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Adenylyl Cyclase Type 8 Overexpression Impairs Phosphorylation-Dependent Orai1 Inactivation and Promotes Migration in MDA-MB-231 Breast Cancer Cells

Abstract

Orai1 plays a major role in store-operated Ca 2+ entry (SOCE) in triple-negative breast cancer (TNBC) cells. This channel is inactivated via different mechanisms, including protein kinase C (PKC) and protein kinase A (PKA)-dependent phosphorylation at Ser-27 and Ser-30 or Ser-34, respectively, which shapes the Ca 2+ responses to agonists. The Ca 2+ calmodulin-activated adenylyl cyclase type 8 (AC8) was reported to interact directly with Orai1, thus mediating a dynamic interplay between the Ca 2+ - and cyclic adenosine monophosphate (cAMP)-dependent signaling pathways. Here, we show that the breast cancer cell lines MCF7 and MDA-MB-231 exhibit enhanced expression of Orai1 and AC8 as compared to the non-tumoral breast epithelial MCF10A cell line. In these cells, AC8 interacts with the Orai1α variant in a manner that is not regulated by Orai1 phosphorylation. AC8 knockdown in MDA-MB-231 cells, using two different small interfering RNAs (siRNAs), attenuates thapsigargin (TG)-induced Ca 2+ entry and also Ca 2+ influx mediated by co-expression of Orai1 and the Orai1-activating small fragment (OASF) of STIM1 (stromal interaction molecule-1). Conversely, AC8 overexpression enhances SOCE, as well as Ca 2+ entry, in cells co-expressing Orai1 and OASF. In MDA-MB-231 cells, we found that AC8 overexpression reduces the Orai1 phosphoserine content, thus suggesting that AC8 interferes with Orai1 serine phosphorylation, which takes place at residues located in the AC8-binding site. Consistent with this, the subset of Orai1 associated with AC8 in naïve MDA-MB-231 cells is not phosphorylated in serine residues in contrast to the AC8-independent Orai1 subset. AC8 expression knockdown attenuates migration of MCF7 and MDA-MB-231 cells, while this maneuver has no effect in the MCF10A cell line, which is likely attributed to the low expression of AC8 in these cells. We found that AC8 is required for FAK (focal adhesion kinase) phosphorylation in MDA-MB-231 cells, which might explain its role in cell migration. Finally, we found that AC8 is required for TNBC cell proliferation. These findings indicate that overexpression of AC8 in breast cancer MDA-MB-231 cells impairs the phosphorylation-dependent Orai1 inactivation, a mechanism that might support the enhanced ability of these cells to migrate.

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Adenylyl Cyclase Type 8 Overexpression Impairs Phosphorylation-Dependent Orai1 Inactivation and Promotes Migration in MDA-MB-231 Breast Cancer Cells

Author: Smani Hajami, Tarik; Falcón Boyano, Débora
Year: 2019
DOI: 10.3390/cancers11111624
Source: https://idus.us.es/bitstreams/3e18f442-9af9-4f7e-b03e-dc4a4bec0dbb/download
Cance s 2019, 11, 1624; doi:10.3390/cance s11111624 www.mdpi.com/jou nal/cance s
A icle
Adenylyl Cyclase Type 8 O e exp ession Impai s
Phospho yla ion-Dependen O ai1 Inac i a ion
and P omo es Mig a ion in MDA-MB-231 B eas
Cance Cells
Jose Sanchez-Collado
1,†
, Jose J. Lopez
1,†,
*
, Isaac Ja din
1
, Ped o J. Camello
2
, Debo a Falcon
3
,
Se gio Regodon
1
, Gines M. Salido
1
, Ta ik Smani
3
and Juan A. Rosado
1,
*
1
Depa men o Physiology, (Cellula Physiology Resea ch G oup), Ins i u e o Molecula Pa hology
Bioma ke s, Uni e si y o Ex emadu a, 10003 Cace es, Spain
2
Depa men o Physiology, (Smoo h Muscle Physiology Resea ch G oup), Ins i u e o Molecula
Pa hology Bioma ke s, Uni e si y o Ex emadu a, 10003 Cace es, Spain
3
Depa men o Medical Physiology and Biophysics, Ins i u e o Biomedicine o Se illa, 41013 Se illa, Spain
†
These au ho s con ibu ed equally o his wo k.
* Co espondence: [email protected] (J.J.L.); [email p o ec ed] (J.A.R.); T
el.: +34-927-257-100 (ex 51376) (J.A.R. and J.J.L.); Fax: +34-927-257-110 (J.A.R. and J.J.L.)
Recei ed: 10 Oc obe 2019; Accep ed: 21 Oc obe 2019; Published: 23 Oc obe 2019
Abs ac : O ai1 plays a majo ole in s o e-ope a ed Ca
2+
en y (SOCE) in iple-nega i e b eas
cance (TNBC) cells. This channel is inac i a ed ia di e en mechanisms, including p o ein kinase
C (PKC) and p o ein kinase A (PKA)-dependen phospho yla ion a Se -27 and Se -30 o Se -34,
espec i ely, which shapes he Ca
2+
esponses o agonis s. The Ca
2+
calmodulin-ac i a ed adenylyl
cyclase ype 8 (AC8) was epo ed o in e ac di ec ly wi h O ai1, hus media ing a dynamic
in e play be ween he Ca
2+
- and cyclic adenosine monophospha e (cAMP)-dependen signaling
pa hways. He e, we show ha he b eas cance cell lines MCF7 and MDA-MB-231 exhibi enhanced
exp ession o O ai1 and AC8 as compa ed o he non- umo al b eas epi helial MCF10A cell line. In
hese cells, AC8 in e ac s wi h he O ai1α a ian in a manne ha is no egula ed by O ai1
phospho yla ion. AC8 knockdown in MDA-MB-231 cells, using wo di e en small in e e ing
RNAs (siRNAs), a enua es hapsiga gin (TG)-induced Ca
2+
en y and also Ca
2+
in lux media ed by
co-exp ession o O ai1 and he O ai1-ac i a ing small agmen (OASF) o STIM1 (s omal
in e ac ion molecule-1). Con e sely, AC8 o e exp ession enhances SOCE, as well as Ca
2+
en y, in
cells co-exp essing O ai1 and OASF. In MDA-MB-231 cells, we ound ha AC8 o e exp ession
educes he O ai1 phosphose ine con en , hus sugges ing ha AC8 in e e es wi h O ai1 se ine
phospho yla ion, which akes place a esidues loca ed in he AC8-binding si e. Consis en wi h his,
he subse o O ai1 associa ed wi h AC8 in naï e MDA-MB-231 cells is no phospho yla ed in se ine
esidues in con as o he AC8-independen O ai1 subse . AC8 exp ession knockdown a enua es
mig a ion o MCF7 and MDA-MB-231 cells, while his maneu e has no e ec in he MCF10A cell
line, which is likely a ibu ed o he low exp ession o AC8 in hese cells. We ound ha AC8 is
equi ed o FAK ( ocal adhesion kinase) phospho yla ion in MDA-MB-231 cells, which migh
explain i s ole in cell mig a ion. Finally, we ound ha AC8 is equi ed o TNBC cell p oli e a ion.
These indings indica e ha o e exp ession o AC8 in b eas cance MDA-MB-231 cells impai s he
phospho yla ion-dependen O ai1 inac i a ion, a mechanism ha migh suppo he enhanced
abili y o hese cells o mig a e.
Keywo ds: o ai1α; adenylyl cyclase 8; s o e-ope a ed calcium en y; b eas cance cells; mig a ion
Cance s 2019, 11, 1624 2 o 24
1. In oduc ion
B eas cance is one o he mos common malignancies in women wo ldwide. Among he
di e en sub ypes, iple-nega i e b eas cance (TNBC) is mo e agg essi e and exhibi s a poo e
p ognosis han o he ypes o b eas cance . Immunohis ochemically, TNBC is cha ac e ized by he
lack o es ogen and p oges e one ecep o s o excess HER2 (human epide mal g ow h ac o
ecep o 2) exp ession. Consequen ly, his ype o cance is esis an o ho monal he apies and
chemicals ha a ge he HER2 ecep o [1]. S udies in TNBC cells e ealed ha Ca2+ signaling is
emodeled and plays a key unc ional ole [2–5]. TNBC cells o e exp ess O ai1, which is esponsible
o he ac i a ion o s o e-ope a ed Ca2+ en y (SOCE) [6]. O ai1 is a well-cha ac e ized egula o o
he p oli e a ion and mig a ion o many TNBC cells, including he MDA-MB-231 cell line [7–9].
O ai1 is he po e- o ming subuni o he highly Ca2+-selec i e CRAC (Ca2+- elease ac i a ed Ca2+)
channel, he bes cha ac e ized s o e-ope a ed channel [10–12]. The CRAC channel is ac i a ed by he
endoplasmic e iculum Ca2+ senso STIM1 upon discha ge o he in acellula Ca2+ s o es, and he
in lux o Ca2+ h ough he channel is modula ed by he egula ion o STIM1 by p o eins like SARAF
(SOCE-associa ed egula o y ac o ) [13–15], as well as by CRAC channel inac i a ion. CRAC cu en s
unde go Ca2+-dependen inac i a ion o p e en excessi e Ca2+ in lux. Two di e en mechanisms,
e med as Ca2+-dependen inac i a ion (FCDI) ha occu s wi hin milliseconds [16] and slow Ca2+-
dependen inac i a ion (SCDI) ha commences ens o seconds a e O ai1 ac i a ion [17], we e
desc ibed, al hough he p ecise mechanism emains unclea . Two a ian s o O ai1, gene a ed by
al e na i e ansla ion ini ia ion, we e ecen ly iden i ied [18], a long o m e med O ai1α o
app oxima ely 33 kDa and a sho o m, O ai1β, lacking amino acids 1–63, o app oxima ely 23 kDa.
O ai1α exhibi s a g ea e FCDI, hus sugges ing ha he N- e minal 63 amino acids migh play a
ele an ole in his p ocess [11]. A ecen s udy epo ed di ec in e ac ion o O ai1 wi h he Ca2+
calmodulin-ac i a ed adenylyl cyclase ype 8 (AC8) [19]. Willoughby e al. speci ically iden i ied
in e ac ion o he N- e minal egion o AC8 wi h esidues 26–34 o he O ai1 N- e minus [19]. This
sequence, exclusi ely p esen in he O ai1α a ian , o e laps wi h h ee O ai1 phospho yla ion si es,
Se -27, -30, and -34. Se -27 and -30 a e phospho yla ed by PKC in i o and in i o, leading o s ong
inac i a ion o CRAC channel unc ion and SOCE [20]. On he o he hand, a ecen s udy
demons a ed ha AC8 media es CRAC inac i a ion by phospho yla ion o O ai1 a Se -34 [21]. The
unc ional in e ac ion be ween AC8 and O ai1 e eals a inely egula ed in e play be ween he cAMP
and Ca2+ signaling pa hways.
He e, we show ha TNBC MDA-MB-231 cells o e exp ess O ai1 and AC8, wi h p edominan
o e exp ession o AC8 o e O ai1. In e ac ion o AC8 wi h O ai1 in e e es wi h phospho yla ion o
he la e , p obably due o o e lapping o he phospho yla ion si es wi h he AC8-binding sequence
o O ai1. In MDA-MB-231 cells, silencing o AC8 esul s in a enua ion o SOCE, while AC8
o e exp ession enhances Ca2+ in lux, hus sugges ing ha AC8 impai s he inac i a ion o O ai1. AC8
was also ound o be equi ed o b eas cance cell mig a ion, hus sugges ing ha AC8, by
enhancing cAMP le els and/o Ca2+ in lux, plays an impo an unc ional ole in b eas cance cells.
2. Resul s
2.1. Exp ession and In e ac ion o O ai1α and AC8 in Non-Tumo al and B eas Cance Cell Lines
Consis en wi h p e ious s udies [3,6], Wes e n blo analysis o whole-cell lysa es om he non-
umo al b eas epi helial MCF10A cell line and he es ogen ecep o posi i e (ER+) and TNBC cell
lines MCF7 and MDA-MB-231, espec i ely, wi h a speci ic an i-human O ai1 an ibody e ealed a
low exp ession o O ai1 in MCF10A cells and a signi ican ly highe exp ession o his p o ein in b eas
cance cells (Figu e 1a,b; p < 0.05; n = 6). The inc eased exp ession o O ai1 in he b eas cance cell
lines is consis en wi h he high exp ession o his p o ein in cance ous issue [22]. As shown in Figu e
1c,d, Wes e n blo analysis o whole-cell lysa es om MCF10A, MCF7, and MDA-MB-231 cells wi h
a speci ic an i-AC8 an ibody e ealed ha his p o ein is sca cely exp essed in he non- umo al cell
line, while i is highly exp essed in MCF7 and MDA-MB-231 b eas cance cells. The O ai1 and AC8
exp ession no malized o he β-ac in con en indica es ha O ai1 exp ession was 371 ± 12 and 393 ±
Cance s 2019, 11, 1624 3 o 24
22% o ha in MCF10A cells in MCF7 and MDA-MB-231 cells, espec i ely, while he AC8 exp ession
was 611 ± 75 and 621 ± 98% o ha in MCF10A cells in MCF7 and MDA-MB-231 cells, espec i ely;
he e o e, he quan i a i e analysis indica ed ha AC8 o e exp ession in b eas cance cells is
signi ican ly g ea e han ha o O ai1. P e ious s udies e ealed a unc ional ela ionship be ween
O ai1 and AC8 [19,21]; hence, we nex explo ed he in e ac ion be ween bo h p o eins in he non-
umo al and umo al b eas cell lines by co-immunop ecipi a ion o cell lysa es wi h an i-O ai1
an ibody, ollowed by Wes e n blo ing wi h an i-AC8 an ibody. The expe imen s we e pe o med in
es ing cells as his in e ac ion was p e iously shown o be cons i u i e [19]. Ou esul s indica ed
ha , while a de ec able in e ac ion was app ecia ed in non- umo al cells, he co-immunop ecipi a ion
be ween O ai1 and AC8 was signi ican ly g ea e in MCF7 and MDA-MB-231 cells (Figu e 1e, ; p <
0.05; n = 6).
Figu e 1. Exp ession and in e ac ion o O ai1 a ian s wi h Ca2+ calmodulin-ac i a ed adenylyl
cyclase ype 8 (AC8) in non- umo al and b eas cance cell lines. (a–d) Non- umo al b eas epi helial
MCF10A and b eas cance MCF7 and MDA-MB-231 cells we e lysed and subjec ed o Wes e n
blo ing wi h an i-O ai1 (a) o an i-AC8 (c) an ibody, ollowed by ep obing wi h an i-β-ac in
an ibody o p o ein loading con ol (b and d). The box-and-whiske plo s (o box plo s) ep esen
O ai1 (b) o AC8 (d) exp ession no malized o he β-ac in con en . Molecula masses indica ed on he
Cance s 2019, 11, 1624 4 o 24
igh we e de e mined using molecula -mass ma ke s un in he same gel; * p < 0.05 compa ed o he
exp ession in MCF10A cells. (e) MCF10A, MCF7, and MDA-MB-231 cells we e lysed, and whole-cell
lysa es we e immunop ecipi a ed (IP) wi h an i-O ai1 an ibody. Immunop ecipi a es we e subjec ed
o 10% SDS-PAGE and subsequen Wes e n blo ing wi h speci ic an i-AC8 an ibody, as indica ed.
Memb anes we e ep obed wi h he an ibody used o immunop ecipi a ion o p o ein loading
con ol. The panels show esul s om one expe imen ep esen a i e o i e o he s. Molecula masses
indica ed on he igh we e de e mined using molecula -mass ma ke s un in he same gel. ( ) The
box plo ep esen s he quan i ica ion o AC8–O ai1 in e ac ion in es ing cells. Resul s a e p esen ed
as a bi a y op ical densi y uni s, and exp essed no malized o he O ai1 exp ession. (g) MCF10A,
MCF7, and MDA-MB-231 cells we e lysed, and whole-cell lysa es we e ea ed wi h N-glycosidase F
(PNGaseF) and esol ed by 10% SDS-PAGE. The blo s we e p obed wi h an i-O ai1 an ibody and
an i-β-ac in an ibody o loading con ol. Molecula masses indica ed on he igh we e de e mined
using molecula -mass ma ke s un in he same gel. (h) The box plo ep esen s O ai1α o O ai1β
exp ession no malized o he β-ac in con en . (i) The box plo ep esen s he O ai1α/O ai1β exp ession
a io in he h ee cell lines in es iga ed; * p < 0.05 compa ed o he exp ession in MCF10A cells, $ p <
0.05 compa ed o he exp ession in MCF7 cells. (j) MDA-MB-231 cells we e ea ed wi h hapsiga gin
(TG; 1 µM) o 1 min o le un ea ed (C), as indica ed, and lysed, and whole-cell lysa es we e
immunop ecipi a ed (IP) wi h an i-AC8 an ibody o subjec ed o Wes e n blo ing wi h an i-O ai1
an ibody (WCL). Immunop ecipi a es we e ea ed wi h PNGaseF and hen subjec ed o 10% SDS-
PAGE and subsequen Wes e n blo ing wi h speci ic an i-O ai1 an ibody, as indica ed. Memb anes
we e ep obed wi h he an ibody used o immunop ecipi a ion o p o ein loading con ol. The
panels show esul s om one expe imen ep esen a i e o i e o he s. Molecula masses indica ed
on he igh we e de e mined using molecula -mass ma ke s un in he same gel.
AC8 was epo ed o bind o an N- e minal sequence o O ai1 loca ed be ween amino acids 26
and 34, which con ains h ee se ines (27, 30, and 34) [23]. This sequence is only p esen in he
mammalian-speci ic ull-leng h O ai1α a ian and is absen in he sho O ai1 a ian , O ai1β [18];
hus, AC8 was epo ed o in e ac solely wi h O ai1α [21]. We assessed he exp ession o O ai1α and
O ai1β in he h ee b eas de i ed cell lines. The na i e O ai1 a ian exp ession was analyzed by
Wes e n blo ing a e p o ein deglycosyla ion wi h PNGaseF. As shown in Figu e 1g, wo dis inc
bands wi h lowe molecula weigh han glycosyla ed O ai1 we e de ec ed, co esponding o O ai1α
and O ai1β. Ou esul s indica ed ha bo h O ai1 a ian s we e highly exp essed in he b eas cance
MCF7 and MDA-MB-231 cell lines as compa ed o non- umo al MCF10A cells (Figu e 1h; p < 0.05; n
= 6). Fu he mo e, we ound ha he exp ession o O ai1α was signi ican ly g ea e in MDA-MB-231
cells han in MCF7 cells (Figu e 1h; p < 0.05) while no di e ences we e de ec ed in he O ai1β
exp ession among he cance cell lines in es iga ed. The la e migh explain he g ea e
O ai1α/O ai1β exp ession a io in MDA-MB-231 cells as compa ed o MCF7 cells (Figu e 1i; p < 0.05;
n = 6). The analysis o he exp ession a io be ween he O ai1 a ian s indica es a g ea e exp ession
o O ai1β in all he cell ypes in es iga ed and, in e es ingly, a g ea e O ai1α/O ai1β exp ession a io
in MCF7 and MDA-MB-231 b eas cance cells han in non- umo al MCF10A cells (Figu e 1i; p < 0.05;
n = 6). We u he explo ed he in e ac ion o AC8 and O ai1α in MDA-MB-231 cells by co-
immunop ecipi a ion o cell lysa es wi h an i-AC8 an ibody, ollowed by ea men o he
immunop ecipi a es wi h PNGaseF and Wes e n blo ing wi h an i-O ai1 an ibody. As shown in
Figu e 1j, ou esul s indica e ha O ai1α, bu no O ai1β, co-immunop ecipi a es wi h AC8 in es ing
condi ions, con i ming p e ious esul s [19,21]. This in e ac ion was no modi ied by ea men o 1
min wi h he sa co/endoplasmic e iculum Ca2+ ATPase (SERCA) inhibi o hapsiga gin (TG; 1 µM),
which is in ag eemen wi h a p e ious s udy by Willoughby and cowo ke s sugges ing a cons i u i e
in e ac ion be ween bo h p o eins [19].
2.2. The In e ac ion be ween O ai1 and AC8 Is Pa ially Dependen on Ca2+ In lux and O ai1
Phospho yla ion a Se -27 and -30
In o de o explo e he mechanism egula ing he O ai1–AC8 in e ac ion, we es ed he possible
Ca2+ dependency o his e en . To add ess his issue, we assessed he ole o Ca2+ eleased om he
Cance s 2019, 11, 1624 5 o 24
in acellula s o es and Ca2+ en y h ough O ai1 in he O ai1–AC8 co-immunop ecipi a ion. Hence,
we es ed O ai1–AC8 in e ac ion in es ing cells o in cells ea ed wi h TG, o induce ne Ca2+ elease
om in acellula Ca2+ s o es, suspended ei he in he p esence o 1 mM ex acellula Ca2+ o in a Ca2+-
ee medium. When indica ed, cells we e loaded wi h dime hyl BAPTA, and suspended ei he in a
Ca2+- ee medium, o p e en ises in cy osolic Ca2+ concen a ion ([Ca2+]c) induced by bo h Ca2+
elease and en y, o in he p esence o 1 mM ex e nal Ca2+, o p e en ises in [Ca2+]c due o Ca2+
elease bu allowing ises in Ca2+ concen a ion in he icini y o he O ai1 channels.
Ou esul s indica ed ha , in he p esence o ex acellula Ca2+, he e was a de ec able O ai1–
AC8 associa ion, which was una ec ed by BAPTA loading o ea men wi h TG (Figu e 2a,b; n = 6),
as p e iously epo ed [19]. Figu e 2c–e depic a de ec able inc ease in he Ca2+ concen a ion in he
O ai1 icini y in cells no loaded wi h BAPTA, as well as, wi h less in ensi y bu s ill signi ican , in
BAPTA-loaded cells as de ec ed wi h G-GECO1.2-O ai1 [24] (p < 0.05; n = 6), and simila esul s we e
ob ained using he nea plasma memb ane Ca2+ indica o u a-FFP18 ( he ini ial slopes o he inc ease
in u a-FFP18 luo escence a io we e 1.0299 ± 0.1325 and 0.3793 ± 0.0205 in con ol and BAPTA-
loaded cells, espec i ely, and he maximal u a-2 luo escence a ios we e 0.20 ± 0.01 and 0.11 ± 0.01
in con ol and BAPTA-loaded cells, espec i ely, Figu e S1, Supplemen a y Ma e ials), which
demons a e ha de ec able ises in Ca2+ concen a ion in he O ai1 mic odomain due o Ca2+ in lux
ia O ai1 we e s ill de ec able in BAPTA-loaded cells. Cell loading wi h dime hyl BAPTA was
wi hou a signi ican e ec on he es ing u a-FFP18 luo escence a io ( he es ing a ios we e 0.60 ±
0.03 and 0.61 ± 0.01 in con ol and BAPTA-loaded cells, espec i ely). When Ca2+ en y was no
allowed, ea men wi h TG esul ed in a educ ion in he O ai1–AC8 in e ac ion, a esponse ha was
main ained when he ise in [Ca2+]c due o Ca2+ e lux om he s o es was p e en ed by BAPTA
loading (Figu e 2a,b; n = 6). These indings sugges ha Ca2+ s o e deple ion i sel plays an inhibi o y
ole in he O ai1–AC8 associa ion ha was o e come by Ca2+ in lux ia O ai1 channels. The e o e,
upon agonis s imula ion, he O ai1–AC8 in e ac ion is s ongly dependen on Ca2+ in lux h ough
he channel.
O ai1 is phospho yla ed by PKC a esidues Se -27 and Se -30, an e en ha nega i ely egula es
O ai1 unc ion [20]. As bo h se ine esidues a e loca ed wi hin he O ai1 AC8-binding egion, we
explo ed whe he phospho yla ion a Se -27 and Se -30 al e s O ai1–AC8 in e ac ion. To in es iga e
his issue, cells we e ans ec ed wi h yellow luo escen p o ein (YFP)-O ai1, he non-
phospho yla able O ai1S27A/S30A mu an , o he phosphomime ic O ai1S27D/S30D mu an , o hey
we e mock- ea ed, and he O ai1–AC8 in e ac ion was analyzed by co-immunop ecipi a ion om
cell lysa es. Figu e 3, bo om panel, depic s ha exp ession o YFP-O ai1 p oduced a band o he
p edic ed size (app oxima ely 60 kDa). Fu he mo e, exp ession o he O ai1S27A/S30A and
O ai1S27D/S30D mu an s yielded se e al bands, one a he size o he na i e O ai1 and o he small
size bands which migh be a ibu ed o O ai1 wi hou pos - ansla ional modi ica ions. As shown in
Figu e 3, ou esul s indica ed ha AC8 was able o co-immunop ecipi a e wi h YFP-O ai1, as well
as wi h he O ai1S27A/S30A and O ai1S27D/S30D mu an s. The e o e, hese indings indica e ha
phospho yla ion o O ai1 a Se -27 and Se -30 is unlikely o in e e e wi h O ai1 binding o AC8.

Cance s 2019, 11, 1624 6 o 24
Figu e 2. Role o Ca2+ mobiliza ion in he O ai1–AC8 in e ac ion. (a) MDA-MB-231 cells we e loaded
wi h dime hyl BAPTA o le un ea ed, as indica ed, and hen suspended in a medium con aining 1
mM Ca2+ o in a Ca2+- ee medium (100 µM EGTA added). Cells we e ea ed wi h 1 µM TG o he
ehicle, as indica ed, and lysed 1 min la e . Whole-cell lysa es we e immunop ecipi a ed (IP) wi h
an i-O ai1 an ibody. Immunop ecipi a es we e subjec ed o 10% SDS-PAGE and subsequen Wes e n
blo ing wi h speci ic an i-AC8 an ibody, as indica ed. Memb anes we e ep obed wi h he an ibody
used o immunop ecipi a ion o p o ein loading con ol. The panels show esul s om one
expe imen ep esen a i e o i e o he s. Molecula masses indica ed on he igh we e de e mined
using molecula -mass ma ke s un in he same gel. (b) The box plo ep esen s he quan i ica ion o
AC8–O ai1 in e ac ion in es ing and TG- ea ed cells. Resul s a e no malized o he O ai1 exp ession;
* p < 0.05 compa ed o he co esponding con ol (un ea ed cells). (c) Cells we e ans ec ed wi h G-
GECO1.2-O ai1. Fo y-eigh hou s la e , cells we e suspended in a Ca2+- ee medium and s imula ed
wi h TG (1 µM) o 2 min, ollowed by addi ion o CaCl2 ( inal concen a ion 1 mM) o he medium
o ini ia e Ca2+ en y. Images a e ep esen a i e o six independen expe imen s. (d–e) Ba g aphs
ep esen he quan i ica ion o he G-GECO (g een gene ically encoded Ca2+ indica o o op ical
imaging) luo escence in cells loaded wi h dime hyl BAPTA (BAPTA) o le un ea ed (con ol), as
indica ed. Fluo escence was analyzed a es , 30 s a e he addi ion o 1 µM TG and 30 s a e he
subsequen addi ion o CaCl2 ( inal concen a ion 1 mM).
Cance s 2019, 11, 1624 7 o 24
Figu e 3. Role o O ai1 phospho yla ion a Se -27 and Se -30 in he O ai1–AC8 in e ac ion. MDA-MB-
231 cells we e ans ec ed wi h pEYPF-O ai1, o he O ai1S27A/S30A and O ai1S27D/S30D mu an s,
o hey we e mock- ea ed, as indica ed. Cells we e hen ea ed wi h 1 µM TG o he ehicle (C) and
lysed 1 min la e . Whole-cell lysa es we e immunop ecipi a ed (IP) wi h an i-AC8 an ibody.
Immunop ecipi a es we e subjec ed o 10% SDS-PAGE and subsequen Wes e n blo ing wi h speci ic
an i-O ai1 an ibody, as indica ed. Memb anes we e ep obed wi h he an i-AC8 an ibody o p o ein
loading con ol. Al e na i ely, he cell lysa es we e subjec ed o 10% SDS-PAGE and subsequen
Wes e n blo ing wi h an i-O ai1 an ibody. The panels show esul s om one expe imen
ep esen a i e o i e o he s. Molecula masses indica ed on he igh we e de e mined using
molecula -mass ma ke s un in he same gel. HC: hea y chain o he an ibody used o
immunop ecipi a ion; na i e O ai1: pos - ansla ionally modi ied O ai1; O ai1: O ai1 wi hou pos -
ansla ional modi ica ions.
2.3. Role o AC8 in he Ac i a ion o S o e-Ope a ed Ca2+ En y in B eas Cance MDA-MB-231 Cells
SOCE in MDA-MB-231 cells was epo ed o be en i ely dependen on O ai1 unc ion [3,6].
Hence, we explo ed he unc ional ole o he in e ac ion be ween O ai1 and AC8 in hese cells. To
assess he ole o AC8 in SOCE, MDA-MB-231 cells we e ans ec ed wi h wo di e en comme cial
small in e e ing RNAs (siRNAs) o AC8 o sc amble plasmids o analyze hei e ec on TG-e oked
Ca2+ mobiliza ion. As shown in Figu e 4a,b, ans ec ion wi h bo h plasmids a enua ed he AC8
exp ession by abou 50% in 48 h. As depic ed in Figu e 4c, in cells ans ec ed wi h sc amble plasmids
suspended in a Ca2+- ee medium, ea men wi h he SERCA inhibi o TG (1 µM) esul ed in a
ansien inc ease in he u a-2 luo escence a io due o Ca2+ elease om he in acellula Ca2+ s o es.
Cell s imula ion wi h TG in a medium con aining 1 mM Ca2+ esul ed in a g ea e and sus ained ise
in he u a-2 luo escence a io as a esul o Ca2+ elease om he in acellula s o es and en y
h ough plasma memb ane channels (Figu e 4d). Cell ans ec ion wi h he siAC8 plasmids was
wi hou signi ican e ec on he es ing u a-2 luo escence a io (in he absence o ex acellula Ca2+,
he es ing a ios we e 0.27 ± 0.01, 0.26 ± 0.01 and 0.28 ± 0.01 in cells ans ec ed wi h sc amble plasmid,
siAC8#1 and siAC8#2, espec i ely, while, in he p esence o 1 mM ex acellula Ca2+, he es ing
a ios we e 0.30 ± 0.02, 0.32 ± 0.01 and 0.33 ± 0.02 in cells ans ec ed wi h sc amble plasmid, siAC8#1
and siAC8#2, espec i ely). Fu he mo e, ans ec ion wi h he siAC8 plasmids did no modi y TG-
induced Ca2+ elease (Figu e 4e,g,i). The ini ial peak u a-2 luo escence a ios we e 0.10 ± 0.01, 0.10 ±
0.01, and 0.09 ± 0.02 in cells ans ec ed wi h sc amble plasmid, siAC8#1, o siAC8#2, espec i ely,
hus indica ing ha AC8 does no ha e a signi ican e ec on he abili y o MDA-MB-231 cells o
accumula e Ca2+ in he in acellula s o es o on he Ca2+ leakage a e om he s o es. By con as ,
a enua ion o AC8 exp ession by ans ec ion o he siAC8 plasmids educed TG-e oked Ca2+
mobiliza ion in he p esence o 1 mM ex acellula Ca2+ (Figu e 4 ,h,i; he ini ial slopes o he inc ease
in u a-2 luo escence a io we e 0.0065 ± 0.0004, 0.0036 ± 0.0003, and 0.0040 ± 0.0002 in cells
Cance s 2019, 11, 1624 8 o 24
ans ec ed wi h sc amble plasmid, siAC8#1, o siAC8#2, espec i ely, while he ini ial peak u a-2
luo escence a ios we e 0.93 ± 0.02, 0.64 ± 0.03, and 0.65 ± 0.02, in cells ans ec ed wi h sc amble
plasmid, siAC8#1, o siAC8#2, espec i ely). As TG-e oked Ca2+ elease was una ec ed by
a enua ion o he AC8 exp ession, his e ec should be a ibu ed o a educ ion in TG-induced Ca2+
in lux. I we conside he a ea unde he cu e (AUC) o he en y o Ca2+ s imula ed by TG, co ec ed
by sub ac ion o he esponse o TG in he absence o ex e nal Ca2+, ans ec ion o he siAC8#1 and
siAC8#2 plasmids signi ican ly educed SOCE by 40 ± 2% and 31 ± 2%, espec i ely (Figu e 4j; p <
0.05).
Figu e 4. AC8 is equi ed o ull s o e-ope a ed Ca2+ en y ac i a ion in MDA-MB-231 b eas cance
cells. (a–b) MDA-MB-231 cells we e ans ec ed wi h wo di e en small in e e ing RNA (siRNA)
AC8 plasmids (siAC8#1 and siAC8#2) o a sc amble plasmid (sc), as indica ed. Fo y-eigh hou s a e
ans ec ion, cells we e lysed and subjec ed o Wes e n blo ing wi h an i-AC8 an ibody, ollowed by
Cance s 2019, 11, 1624 9 o 24
ep obing wi h an i-β-ac in an ibody o p o ein loading con ol (a). Molecula masses indica ed on
he igh we e de e mined using molecula -mass ma ke s un in he same gel. (b) The box plo
ep esen s AC8 exp ession unde he di e en expe imen al p ocedu es no malized o he β-ac in
con en . (c–j) MDA-MB-231 cells we e ans ec ed wi h siAC8#1, siAC8#2, o sc amble plasmids, as
indica ed. Fo y-eigh hou s a e ans ec ion, u a-2-loaded cells we e pe used wi h a Ca2+- ee
medium (100 µM EGTA added) o wi h a medium con aining 1 mM CaCl2, as indica ed, and hen
s imula ed wi h TG (1 µM). (i and j) Ba g aphs ep esen TG-induced Ca2+ elease (i) and mobiliza ion
(j) in MDA-MB-231 cells ans ec ed wi h he indica ed plasmids. Da a a e exp essed as he AUC o
means ± SEM (s anda d e o o he mean) o 40 cells/day/3–5 days and p esen ed as a pe cen age o
con ol (cells ans ec ed wi h sc amble plasmid). (k and l) MDA-MB-231 cells we e ans ec ed wi h
siAC8#1, siAC8#2, o sc amble plasmids, as indica ed. Fo y-eigh hou s a e ans ec ion, u a-2-
loaded cells we e pe used wi h a Ca2+- ee medium (100 µM EGTA added) and hen s imula ed wi h
1 µM TG, ollowed by addi ion o CaCl2 ( inal concen a ion 1 mM) o he medium o ini ia e Ca2+
in lux. (l) Ba g aphs ep esen TG-induced Ca2+ en y unde he di e en expe imen al condi ions.
Da a a e exp essed as he AUC o means ± SEM o 40 cells/day/3–5 days and p esen ed as a pe cen age
o con ol (cells ans ec ed wi h sc amble plasmid); * p < 0.05 as compa ed o sc amble- ea ed cells.
Simila esul s we e obse ed when we es ima ed TG-induced Ca2+ en y using he Ca2+ add-
back p o ocol. As shown in Figu e 4k, ans ec ion o siAC8#1 o #2 plasmids signi ican ly a enua ed
SOCE ( he ini ial peak u a-2 luo escence a ios upon addi ion o Ca2+ o TG- ea ed cells we e 1.68
± 0.35, 0.90 ± 0.05, and 1.09 ± 0.04 in cells ans ec ed wi h sc amble plasmid, siAC8#1, o siAC8#2,
espec i ely, and he ini ial slopes o he inc ease in u a-2 luo escence a io we e 0.0448 ± 0.0091,
0.0213 ± 0.0022, and 0.0207 ± 0.0029 in cells ans ec ed wi h sc amble plasmid, siAC8#1, o siAC8#2,
espec i ely).
In an a emp o asce ain mo e speci ically he ole o AC8 in Ca2+ in lux h ough O ai1, we
analyzed he en y o Ca2+ in cells exp essing O ai1 and he O ai1-ac i a ing small agmen (OASF;
amino acids 233–474) o STIM1. MDA-MB-231 cells we e ans ec ed wi h exp ession plasmids o
pEYFP-O ai1 and pEYFP-OASF in combina ion wi h he siAC8 o sc amble plasmids. Exp ession o
O ai1, OASF, o bo h in he absence o p esence o he siAC8 plasmids did no signi ican ly al e he
es ing u a-2 luo escence a io ( es ing a ios we e 0.30 ± 0.01, 0.32 ± 0.01, 0.30 ± 0.01, 0.32 ± 0.01, 0.30
± 0.01, and 0.31 ± 0.01 in cells ans ec ed wi h sc amble plasmid, O ai1, OASF, O ai1 + OASF, O ai1
+ OASF + siAC8#1, and O ai1 + OASF + siAC8#2, espec i ely). As shown in Figu e 5, exp ession o
O ai1 alone had a negligible e ec , i any, on he u a-2 luo escence a io, as p e iously epo ed
[25]. On he o he hand, OASF exp ession signi ican ly enhanced Ca2+ in lux in hese cells, which
exp essed a signi ican amoun o endogenous O ai1 (Figu e 5c). Co-exp ession o O ai1 and OASF
esul ed in a obus ac i a ion o Ca2+ en y independen ly o Ca2+ s o e deple ion as compa ed o
mock- ea ed cells, which did no display a signi ican cons i u i e Ca2+ en y. Ca2+ en y induced by
co-exp ession o O ai1 and OASF was impai ed by AC8 silencing (Figu e 5e, ,g; p < 0.05), hus
sugges ing ha AC8 di ec ly modula es Ca2+ en y h ough O ai1 in MDA-MB-231 cells. The ini ial
peak u a-2 luo escence a ios we e 0.09 ± 0.01, 0.10 ± 0.01, 0.28 ± 0.02, 0.84 ± 0.07, 0.13 ± 0.01, and
0.13 ± 0.01 in cells ans ec ed wi h sc amble plasmid, O ai1, OASF, O ai1 + OASF, O ai1 + OASF +
siAC8#1, and O ai1 + OASF + siAC8#2, espec i ely.
The ole o AC8 in O ai1 channel unc ion in MDA-MB-231 cells was u he explo ed by es ing
he e ec o AC8 o e exp ession on Ca2+ in lux in cells exp essing exogenous O ai1 and OASF. Cell
ans ec ion wi h AC8 plasmid was wi hou signi ican e ec on he es ing u a-2 luo escence a io
(in he absence o ex acellula Ca2+, he es ing a ios we e 0.34 ± 0.01, 0.36 ± 0.01, 0.32 ± 0.01, and 0.32
± 0.01 in cells ans ec ed wi h O ai1 + OASF, O ai1 + OASF + AC8, emp y ec o (mock), and AC8
o e exp ession plasmid alone, espec i ely; Figu e 6). As shown in Figu e 6a, YFP-AC8 was
e icien ly exp essed in MDA-MB-231 cells. In e es ingly, Ca2+ en y induced by co-exp ession o
O ai1 and OASF, es ima ed as he AUC, was signi ican ly enhanced by 30% upon AC8
o e exp ession (Figu e 6b,c; p < 0.05). The ini ial peak u a-2 luo escence a ios we e 0.84 ± 0.02, 1.01
± 0.03, 0.89 ± 0.04, and 1.11 ± 0.05 in cells ans ec ed wi h O ai1 + OASF, O ai1 + OASF + AC8, emp y
ec o (mock), and AC8 o e exp ession plasmid alone, espec i ely, whe eby he wo la e ones
Cance s 2019, 11, 1624 16 o 24
indica ed. Fo y-eigh hou s la e , cells we e lysed and subjec ed o 10% SDS-PAGE and Wes e n
blo ing wi h an i-phospho-FAK (Y397) o an i-FAK speci ic an ibodies. Memb anes we e ep obed
wi h an i-β-ac in an ibody o p o ein loading con ol. Blo s a e ep esen a i e o i e sepa a e
expe imen s. The box plo ep esen s FAK y osine phospho yla ion p esen ed as he phospho-
FAK/ o al FAK a io.
2.6. AC8 Is Requi ed o TNBC Cell P oli e a ion
We u he explo ed he ole o AC8 in cell p oli e a ion in TNBC cells. Wes e n blo analysis o
whole-cell lysa es om MCF10A and MCF7, as well as he TNBC cell lines MDA-MB-231, BT20, and
Hs578T, wi h a speci ic an i-AC8 an ibody e ealed ha his p o ein is highly exp essed in MCF7 and
TNBC cells (Figu e 11a). Nex , we explo ed he ole o AC8 in MDA-MB-231 and HS578T cells. As
shown in Figu e 4a and 11c, cell ans ec ion wi h siAC8#1 and siAC8#2 signi ican ly a enua ed AC8
exp ession in MDA-MB-231 and Hs578T cells, espec i ely (p < 0.05; n = 4). Silencing AC8 p o ein
exp ession signi ican ly a enua ed MDA-MB-231 and Hs578T cell p oli e a ion a all imes
in es iga ed as compa ed o cells ans ec ed wi h sc amble plasmid (Figu e 11b,c; p < 0.05; n = 4).
The e o e, ou obse a ions e eal ha AC8 plays an impo an ole in TNBC cell p oli e a ion.
Figu e 11. Role o AC8 in iple-nega i e b eas cance (TNBC) cell p oli e a ion. (a) Non- umo al
b eas epi helial MCF10A, luminal MCF7 b eas cance , and TNBC cells (MDA-MB-231, BT20, and
Hs578T) we e lysed and subjec ed o Wes e n blo ing wi h an i-AC8 an ibody, ollowed by ep obing
wi h an i-β-ac in an ibody o p o ein loading con ol. (b,c) MDA-MB-231 (b) and Hs578T (c) cells
we e ans ec ed wi h siAC8#1, siAC8#2, o sc amble plasmid (Sc), as indica ed. Fo y-eigh hou s
la e , cell p oli e a ion was assessed o a u he 24 and 48 h using he b omodeoxyu idine (B dU)
cell p oli e a ion assay ki , as desc ibed in Sec ion 4. The box plo ep esen s cell p oli e a ion 0, 24,
and 48 h a e cell ans ec ion, p esen ed as B dU up ake a e; * p < 0.05 compa ed o he
co esponding con ol (cells ans ec ed wi h sc amble plasmid). (c, op panel) Hs578T cells we e
lysed and subjec ed o 10% SDS-PAGE and Wes e n blo ing wi h an i-AC8 an ibody. Blo s a e
ep esen a i e o h ee sepa a e expe imen s.
3. Discussion
O ai1 was epo ed o play a majo ole in Ca2+ in lux in he TNBC cell line MDA-MB-231. SOCE,
a majo mechanism o Ca2+ en y in his cell ype, was ound o be s ongly dependen on O ai1 [6],
whose plasma memb ane exp ession is modula ed by TRPC6 channels [3]. Fu he mo e, O ai1 is
in ol ed in s o e-independen Ca2+ in lux h ough a unc ional in e ac ion wi h K 10.1 po assium
channels ha media e se um-induced mig a ion [9]. O ai1 Ca2+ channels play an impo an unc ional

Cance s 2019, 11, 1624 17 o 24
ole in b eas cance cells suppo ing a numbe o cance hallma ks such as mig a ion, p oli e a ion,
o su i al [33–35].
The O ai1 N- e minal in acellula egion con ains se e al phospho yla ion si es. Se -27 and -30
a e he main phospho yla ion si es a ge ed by PKCβ1 [20], while Se -34 was ound o be a a ge o
p o ein kinase G (PKG) [36] and, mo e ecen ly, Zhang and cowo ke s e ealed ha Se -34 is also a
PKA phospho yla ion si e [21]. Phospho yla ion o O ai1 a any o hese se ine esidues was
demons a ed o esul in O ai1 channel inac i a ion and educ ion o Ca
2+
in lux. These h ee se ines
a e loca ed in he O ai1 AC8-binding sequence (amino acids 26–34). He e, we show ha AC8 binding
o O ai1 a enua es O ai1 se ine phospho yla ion in MDA-MB-231 cells, leading o enhanced Ca
2+
en y h ough he channel. This s a emen is based on di e en obse a ions. Fi s o all, we ound
ha AC8 and he O ai1α and O ai1β a ian s a e o e exp essed in b eas cance MDA-MB-231 and
MCF7 cells as compa ed o non- umo al b eas epi helial cells. Secondly, O ai1α, bu no O ai1β
lacking he N- e minal 63 amino acids, cons i u i ely in e ac s wi h AC8. Thi dly, while he subse o
O ai1 no associa ed wi h AC8 is phospho yla ed in se ine esidues bo h unde es ing condi ions
and upon s imula ion wi h he SERCA inhibi o TG, he AC8-associa ed O ai1 subse is no se ine-
phospho yla ed, hus sugges ing ha AC8 in e ac ion migh in e e e wi h O ai1 phospho yla ion a
Se -27, -30, and -34. Fou hly, AC8 o e exp ession impai s O ai1 se ine phospho yla ion. Las ly, AC8
exp ession silencing signi ican ly educes TG-induced Ca
2+
en y, as well as Ca
2+
in lux media ed by
co-exp ession o O ai1 wi h he STIM1 OASF egion in hese cells; con e sely, AC8 o e exp ession
leads o enhanced Ca
2+
in lux in cells co-exp essing O ai1 and OASF, as well as TG-e oked Ca
2+
in lux.
A ecen epo by Zhang and cowo ke s showed an elegan unc ional in e ac ion be ween
O ai1 and AC8, whe e AC8 ac i a ion media es an O ai1 inac i a ion mechanism d i en by local
cAMP and PKA ac i a ion ha , in u n, phospho yla es O ai1 a Se -34 [21]. He e, we show ha
binding o AC8 o O ai1, a he sequence be ween amino acids 26 and 34, impai s phospho yla ion o
O ai1 a Se -27, Se -30, and Se -34, he O ai1 phospho yla ion si es cha ac e ized a p esen [20,21,36].
The e o e, acco ding o p e ious esul s [21], Ca
2+
in lux h ough he O ai1 subse associa ed wi h
AC8 should be in ol ed in he inac i a ion o he AC8-independen O ai1 channels. In naï e cells,
wi h a no mal AC8 exp ession, AC8 is expec ed o p omo e inac i a ion o a la ge subse o O ai1
channels; howe e , in b eas cance MDA-MB-231 cells, which p edominan ly o e exp ess AC8 o e
O ai1, he AC8/O ai1 s oichiome y is shi ed in a o o AC8 and, subsequen ly, he subse o AC8-
independen O ai1 is expec ed o be educed, and he AC8-induced O ai1 inac i a ion is, hus,
impai ed (Figu e 12).
Figu e 12. Ca oon summa izing he impai men o phospho yla ion-dependen O ai1 inac i a ion
by AC8 o e exp ession. In non- umo al b eas epi helial cells, Ca
2+
in lux ia O ai1 ac i a es AC8,
which, in u n, esul s in he ac i a ion o PKA, leading o inac i a ion o a la ge subse o AC8-
Cance s 2019, 11, 1624 18 o 24
independen O ai1 channels. In b eas cance MDA-MB-231 cells, he g ea e AC8 o e exp ession
modi ies he AC8/O ai1 s oichiome y, hus p e en ing phospho yla ion-dependen O ai1
inac i a ion.
We u he explo ed he unc ional ele ance o he AC8–O ai1 in e ac ion in MDA-MB-231
cells. In b eas cance cells, O ai1 was epo ed o play an impo an ole in mig a ion [37,38] and he
p esen s udy p o ides e idence o a ole o AC8 suppo ing b eas cance cell mig a ion. Silencing
AC8 exp ession a enua es mig a ion o es ing and agonis s imula ed MDA-MB-231 cells, while he
same expe imen al maneu e was wi hou e ec in he non- umo al b eas epi helial MCF10A cell
line, an obse a ion ha is likely a ibu ed o he low AC8 exp ession in his cell line. The ole o
AC8 in cell mig a ion is no speci ic o TNBC cells, as simila esul s we e obse ed in he luminal
b eas cance MCF7 cell line, which exhibi s some common ea u es wi h he MDA-MB-231 cell line,
such as AC8 and O ai1 o e exp ession. While he ole o AC8 in cell mig a ion migh be a ibu ed
o impai men o O ai1 inac i a ion and, hus, he suppo o Ca2+ in lux, we canno ule ou he
possibili y ha cAMP gene a ion by AC8 also plays a ole in b eas cance cell mig a ion, as PKA
ac i a ion in MDA-MB-231 and MCF7 cells by he cAMP analogue 8-b omo-cAMP pe se enhances
cell mig a ion and, con e sely, pha macological PKA inhibi ion a enua es i .
Finally, we in es iga ed he mechanism unde lying he ole o AC8 in MDA-MB-231 cell
mig a ion. Focal adhesion u no e is essen ial o cell mig a ion, and he cy osolic y osine kinase
FAK plays a cen al ole in he dynamics o ocal adhesions [39]. Hence, we assessed whe he he ole
o AC8 in cell mig a ion migh be a ibu ed o he egula ion o FAK phospho yla ion a Ty -397,
which is used as an indica o o FAK ac i a ion [40,41]. Ou esul s indica e ha FAK
phospho yla ion a Ty -397 is s ongly dependen on AC8 exp ession, hus sugges ing ha FAK
ac i a ion migh unde lie he pa icipa ion o AC8 in MDA-MB-231 cell mig a ion.
We u he obse ed ha AC8 plays a ele an ole in TNBC cell p oli e a ion, ano he cellula
unc ion egula ed by SOCE in b eas cance cells [3].
4. Ma e ials and Me hods
4.1. Reagen s
Fu a-2 ace oxyme hyl es e ( u a-2/AM) was om Molecula P obes (Leiden, The Ne he lands).
TG, abbi polyclonal an i-O ai1 an ibody (ca alog numbe O8264, epi ope: amino acids 288–301 o
human O ai1), abbi polyclonal an i-β-ac in an ibody (ca alog numbe A2066, epi ope: amino acids
365–375 o human β-ac in), KT5720, 8-b omoadenosine 3’-5’-cyclic monophospha e sodium, BAPTA
(1,2-Bis(2-aminophenoxy)e hane-N,N,N′,N′- e aace ic acid e akis(ace oxyme hyl es e )), EGTA
(e hylene glycol-bis(2-aminoe hyle he )-N,N,N′,N′- e aace ic acid), HEPES (4-(2-
Hyd oxye hyl)pipe azine-1-e hanesul onic acid), EDTA (e hylenedini ilo e aace ic acid) and
bo ine se um albumin (BSA) we e om Sigma (S Louis, MO, USA). Rabbi monoclonal an i-FAK
an ibody (ca alog numbe ab40794, epi ope: wi hin amino acids 700–800 o human FAK) and abbi
monoclonal an i-FAK (phospho Y-397) an ibody (ca alog numbe ab81298) we e om Abcam
(Camb idge, UK). Ho se adish pe oxidase-conjuga ed goa an i-mouse immunoglobulin G (IgG)
an ibody and goa an i- abbi IgG an ibody we e om Jackson labo a o ies (Wes G o e, PA, USA).
Clean-Blo ™ IP De ec ion Reagen , ca bamylcholine chlo ide (ca bachol), abbi polyclonal an i-
adenyla e cyclase 8 an ibody (ca alog numbe PA5-72589, epi ope: amino acids 946–972 o human
adenyla e cyclase 8), Supe Signal® Wes Du a ex ended du a ion subs a e eagen , Silence ®
Adenylyl cyclase 8 p e-designed siRNAs (Ids#: 119586 and 119587), and Silence ® Selec Nega i e
Con ol siRNA we e om The moFishe Scien i ic (Wal ham, MA, USA). PNGase F om
Elizabe hkingia mi icola was om P omega Co po a ion (Madison, WI, USA) Dha maFECT kb
ans ec ion eagen was om Dha macon Inc (La aye e, CO, USA). P o ein A aga ose was om
Me ck-Millipo e (Bu ling on, MA, USA). Plasmids used we e kindly p o ided by Ch is oph
Romanin (YFP-O ai1 and YFP-OASF; Uni e si y o Linz, Linz, Aus ia), Michelle Halls (YFP-
adenylyl cyclase 8; Monash Uni e si y, Aus alia), and Agus in Gue e o (Flag-O ai1-S27A/S30A and
Cance s 2019, 11, 1624 19 o 24
Flag-O ai1-S27D/S30D; CINVESTAV, Mexico). G-GECO1.2-O ai1 was a gi om Michael Cahalan
(Addgene plasmid #73562; h p://n2 .ne /addgene:73562; Resea ch Resou ce Iden i ie :
Addgene_73562). Fu a-FFP18/AM was om San a C uz Bio echnology (Dallas, TX, USA). All o he
eagen s we e o analy ical g ade.
4.2. Cell Cul u e and T ans ec ion
The MCF10A cell line was p o ided by D . Po ie -Ca e eau (Uni e si é F ançois Rabelais Tou s,
F ance). MCF7 and MDA-MB-231 cell lines we e ob ained om Ame ican Type Cul u e Collec ion
(Manassas, VA, USA). Hs578T cells we e p o ided by D . Beni ez (CNIO, Mad id, Spain). Cells we e
cul u ed up o 20–25 passages a 37 °C wi h 5% CO2 in Dulbecco's Modi ied Eagle Medium (DMEM)-
F12 (MCF10A) o DMEM (MCF7 and MDA-MB-231), supplemen ed wi h 10% ( / ) ho se o e al
bo ine se um, espec i ely, and 100 U/mL penicillin and s ep omycin, as desc ibed p e iously [3].
Fo Wes e n blo ing and immunop ecipi a ion assays, cells (2 × 106) we e pla ed in 75-cm2 lasks and
cul u ed o 48–72 h, while, o calcium imaging, wound healing assay, and con ocal de e mina ion
o G-GECO1.2 luo escence assays, cells (2 × 105 o 2.5 × 105) we e seeded in a 35-mm six-well
mul idish.
MDA-MB-231 cells we e ans ec ed wi h exp ession plasmids o YFP-O ai1, YFP-AC8, YFP-
OASF, Flag-O ai1-S27A/S30A, and Flag-O ai1-S27D/S30D o sc amble plasmid using Dha maFECT
kb ans ec ion eagen . Plasmids we e used a 1 µg/mL. AC8 siRNAs and nega i e con ol siRNA
we e also ans ec ed in o cell using Dha maFECT kb ans ec ion eagen . siRNAs we e used o
silencing expe imen s a 1 µg/mL.
4.3. Measu emen o Cy osolic F ee-Calcium Concen a ion ([Ca2+]c)
Cells we e loaded wi h u a-2 by incuba ion wi h 2 µM u a 2/AM o 30 min a 37 °C as
desc ibed p e iously [42]. Co e slips wi h cul u ed cells we e moun ed on a pe usion chambe and
placed on he s age o an epi luo escence in e ed mic oscope (Nikon Eclipse Ti2, Ams e dam, The
Ne he lands) wi h an image acquisi ion and analysis sys em o ideomic oscopy (NIS-Elemen s
Imaging So wa e, Nikon, Ams e dam, The Ne he lands). Cells we e con inuously supe used a
oom empe a u e wi h HEPES-bu e ed saline (HBS) con aining (in mM) 125 NaCl, 5 KCl, 1 MgCl2,
5 glucose, and 25 HEPES, pH 7.4, supplemen ed wi h 0.1% (w/ ) BSA. Cells we e examined a 40×
magni ica ion (Nikon CFI S FLUOR 40× Oil, Ams e dam, The Ne he lands) and we e al e na i ely
exci ed wi h ligh om a xenon lamp passed h ough a high-speed monoch oma o Op oscan ELE
450 (Cai n Resea ch; Fa e sham, UK) a 340/380 nm. Fluo escence emission a 505 nm was de ec ed
using a cooled digi al sCMOS came a Zyla 4.2 (Ando ; Bel as , UK) and eco ded using NIS-Elemen s
AR so wa e (Nikon; Tokyo, Japan). Fluo escence a io (F340/F380) was calcula ed pixel by pixel, and
he da a we e p esen ed as ΔF340/F380, as p e iously desc ibed [13,43,44]. TG-e oked Ca2+ elease and
Ca2+ mobiliza ion, as well as cons i u i e Ca2+ in lux in cells co-exp essing YFP-O ai1 and YFP-OASF,
we e es ima ed as he a ea unde he cu e (AUC) measu ed as he in eg al o he ise in u a-2
luo escence a io o 2.5 min a e he addi ion o TG in he absence o p esence o ex acellula Ca2+,
espec i ely, aking a sample e e y second. To compa e he a e o inc ease in u a-2 luo escence
be ween di e en ea men s we used he cons an o he exponen ial inc ease. T aces we e i ed o
he equa ion: y = A(1 − e−K1T ) e−K2T, whe e K1 is he cons an o he exponen ial inc ease.
4.4. Measu emen o Nea -Plasma-Memb ane F ee-Calcium Concen a ion
Cells we e incuba ed wi h 5 µM u a-FFP18/AM o 2 h a 37 °C as desc ibed p e iously [45].
Co e slips wi h cul u ed cells we e moun ed on a pe usion chambe and placed on he s age o an
epi luo escence in e ed mic oscope (Nikon Eclipse Ti2, Ams e dam, The Ne he lands) wi h an
image acquisi ion and analysis sys em o ideomic oscopy (NIS-Elemen s Imaging So wa e,
Nikon). Cells we e con inuously supe used wi h HBS supplemen ed wi h 0.1% (w/ ) BSA a oom
empe a u e and we e examined a 40× magni ica ion (Nikon CFI S FLUOR 40× Oil, Ams e dam, The
Ne he lands). Cells we e al e na i ely exci ed wi h ligh om a xenon lamp passed h ough a high-
Cance s 2019, 11, 1624 20 o 24
speed monoch oma o Op oscan ELE 450 (Cai n Resea ch; Fa e sham, UK) a 335 and 364 nm, and
luo escence emission, a 490 and 502 nm, espec i ely, was de ec ed using a cooled digi al sCMOS
came a Zyla 4.2 (Ando ; Bel as , UK) and eco ded using NIS-Elemen s AR so wa e (Nikon, Tokyo,
Japan). Fluo escence a io (F335/F364) was calcula ed pixel by pixel, and he da a we e p esen ed as
ΔF335/F364. TG-e oked Ca2+ en y was measu ed as he in eg al o he ise in u a-FFP18 luo escence
a io o 3 min a e he addi ion o ex acellula Ca2+ aking a sample e e y second (AUC). To
compa e he a e o inc ease in u a-FFP18 luo escence be ween di e en ea men s, aces we e
i ed o he equa ion men ioned in Sec ion 4.3.
4.5. Immunop ecipi a ion and Wes e n Blo ing
The immunop ecipi a ion and Wes e n blo ing we e pe o med as desc ibed p e iously [46].
B ie ly, 500-µL aliquo s o cell suspension (4 × 106 cell/mL) we e lysed wi h an equal olume o ice-
cold 2× NP-40 bu e , pH 8, con aining 274 mM NaCl, 40 mM T is, 4 mM EDTA, 20% glyce ol, 2%
nonide P-40, 2 mM Na3VO4, and comple e EDTA- ee p o ease inhibi o able s. Aliquo s o cell
lysa es (1 mL) we e immunop ecipi a ed by incuba ion wi h 2 µg o an i-O ai1 o an i-AC8 an ibody
and 25 µL o p o ein A aga ose o e nigh a 4 °C on a ocking pla o m. The so elu ion o p o eins
bound o he p o ein A aga ose was pe o med acco ding o he p o ocol desc ibed by An obus and
Bo ne [47]. The immunop ecipi a es we e esol ed by 10% SDS-PAGE, and sepa a ed p o eins we e
elec opho e ically ans e ed on o ni ocellulose memb anes o subsequen p obing. Blo s we e
incuba ed o e nigh wi h 10% (w/ ) BSA in T is-bu e ed saline wi h 0.1% Tween-20 (TBST) o block
esidual p o ein binding si es. Immunode ec ion o O ai1 and β-ac in was achie ed by incuba ion o
1 h wi h an i-O ai1 an ibody dilu ed 1:500 in TBST o 1 h wi h an i-β-ac in an ibody dilu ed 1:2000 in
TBST, espec i ely. AC8, p-FAK, and FAK we e achie ed by incuba ion o e nigh wi h an i-AC8,
an i-p-FAK (phospho Y-397) and an i-FAK an ibody dilu ed 1:500 in TBST, espec i ely. The p ima y
an ibody was emo ed, and blo s we e washed six imes o 5 min each wi h TBST. To de ec he
p ima y an ibody, blo s we e incuba ed o 1 h wi h ho se adish pe oxidase-conjuga ed goa an i-
mouse IgG an ibody, ho se adish pe oxidase-conjuga ed goa an i- abbi IgG an ibody dilu ed
1:10000 in TBST, o Clean-Blo ™ IP De ec ion Reagen dilu ed 1:250 in TBST, and hen exposed o
enhanced chemiluminiscence eagen s o 5 min. The densi y o bands was measu ed using a C-DiGi
Chemiluminescen Wes e n Blo Scanne (LI-COR Biosciences, Lincoln, NE, USA). Da a we e
no malized o he amoun o p o ein eco e ed by he an ibody used o he immunop ecipi a ion.
4.6. Wound Healing Assay
The wound healing assay was pe o med as desc ibed p e iously [3]. MDA-MB-231 cells we e
seeded in a 35-mm six-well mul idish o ob ain con luence a e 24 h. Nex , cells we e cul u ed in
medium supplemen ed wi h 1% se um, and a wound was c ea ed using a s e ile 200-µL plas ic
pipe e ip. Pho og aphs we e aken immedia ely o a he imes indica ed using an in e ed
mic oscope Nikon Eclipse TS100 (Tokyo, Japan). Mig a ion o cells was quan i a ed using Fiji ImageJ
(NIH; Be hesda, MD, USA).
4.7. Con ocal De e mina ion o G-GEC01.2 Fluo escence
G-GECO1.2-O ai1 ans ec ed MDA-MB-231 cells we e seeded on co e slips and moun ed on a
pe usion chambe and placed on he s age o an epi luo escence in e ed mic oscope Nikon Eclipse
Ti (Tokio, Japan) wi h an image acquisi ion and analysis sys em o ideomic oscopy NIS-Elemen s
Imaging So wa e (Nikon, Ams e dam, The Ne he lands). Cells we e con inuously supe used wi h
HBS supplemen ed wi h 0.1% (w/ ) BSA a oom empe a u e. Cells we e examined a 60×
magni ica ion and exci ed using a con ocal lase -scanning sys em (Melles-G io , IDEX Heal h &
Science, Walling o d, CT, USA) a 488 nm. Fluo escence emission a 515 nm was de ec ed and
eco ded using NIS-Elemen s AR so wa e (Nikon). GECO luo escence was de e mined (a) be o e
he addi ion o TG ( es ing) in he absence o ex acellula Ca2+ (100 µM EGTA added), (b) 30 s a e
he addi ion o 1 µM TG in he absence o ex acellula Ca2+, and (c) 30 s a e he addi ion o 1 mM
Cance s 2019, 11, 1624 21 o 24
CaCl2 o he ex acellula medium. Images we e analyzed using ImageJ so wa e (NIH, Be hesda,
MD, USA).
4.8. De e mina ion o Cell P oli e a ion
To de e mine cell p oli e a ion, cells we e seeded a a concen a ion o 5 × 103/well in o 96-well
pla es and, a e 0, 24, and 48 h, cell p oli e a ion was assessed using a speci ic cell p oli e a ion assay
ki based on he measu emen o B dU inco po a ion du ing DNA syn hesis acco ding o he
manu ac u e ’s ins uc ions (BioVision, Milpi as, CA, USA). Abso bance in samples was measu ed
using a pla e eade (Epoch, Bio ek, Swindon, UK) a 450 nm, p esen ed as a bi a y uni s.
4.9. S a is ical Analysis
Analysis o s a is ical signi icance was pe o med using he K uskal–Wallis es combined wi h
Dunn´s pos hoc es (o one-way analysis o a iance combined wi h Tukey pos hoc es o he
analysis o Ca2+ de e mina ions) (G aphPad P ism Windows 5.04, San Diego, CA, USA). Fo
compa ison be ween wo g oups, he Mann–Whi ney U es was used. A p- alue <0.05 was
conside ed o be s a is ically signi ican .
5. Conclusions
In conclusion, ou esul s p o ide s ong e idence o he impai men o phospho yla ion-
dependen O ai1 inac i a ion by AC8 o e exp ession in MDA-MB-231 cells, a mechanism ha
enhances Ca2+ in lux, b eas cance cell mig a ion (by suppo ing FAK ac i a ion), and cell
p oli e a ion. These indings sugges ha AC8 migh be a good candida e o he de elopmen o
an i- umo al s a egies in b eas cance .
Supplemen a y Ma e ials: The ollowing a e a ailable online a www.mdpi.com/xxx/s1: Figu e S1: Ca2+
mobiliza ion nea he plasma memb ane in MDA-MB-231 b eas cance cells; Figu e S2: Role o he cAMP–PKA
pa hway in MCF7 cell mig a ion; Figu e S3: Role o AC8 in MCF7 cell mig a ion; Figu e S4: Role o AC8 in
MCF10A cell mig a ion.
Au ho Con ibu ions: Concep ualiza ion, J.J.L., T.S., and J.A.R.; unding acquisi ion, G.M.S., T.S., and J.A.R.;
in es iga ion, J.S.-C., J.J.L., I.J., S.R., P.J.C., D.F., T.S., and J.A.R.; supe ision, J.A.R.; w i ing—o iginal d a ,
J.A.R.; w i ing— e iew and edi ing, S.R., G.M.S., and T.S. All au ho s e iewed and app o ed he manusc ip .
Funding: This wo k was suppo ed by MINECO (G an s BFU2016-74932-C2-1-P and BFU2016-74932-C2-2-P)
and Jun a de Ex emadu a-FEDER (Fondo Eu opeo de Desa ollo Regional G an s IB16046 and GR18061). J.J.L.
and I.J. a e suppo ed by a con ac om Jun a de Ex emadu a (TA18011 and TA18054, espec i ely). J.S.-C. is
suppo ed by a con ac om Minis y o Science, Inno a ion, and Uni e si ies, Spain.
Acknowledgmen s: We a e g a e ul o Agus in Gue e o (Cen e o Resea ch and Ad anced S udies o he
Na ional Poly echnic Ins i u e, Mexico), Ch is oph Romanin (Uni e si y o Linz, Aus ia), and Michelle Halls
(Monash Uni e si y, Aus alia) o p o iding plasmids. We a e also g a e ul o Ja ie Beni ez (Spanish Na ional
Cance Resea ch (CNIO), Spain) o p o iding he Hs578T cells. The BT-20 human b eas ca cinoma cell line was
gene ously p o ided by Abela do López-Ri as and Ca men Palacios (Cell Dea h and Signaling Resea ch G oup,
CABIMER Se ille, Spain). We hank Sand a Al a ado o echnical assis ance.
Con lic s o In e es : The au ho s decla e no con lic s o in e es .
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