scieee Science in your language
[en] (orig)

Optimization of Growth and Carotenoid Production by Haloferax mediterranei Using Response Surface Methodology

Abstract

Haloferax mediterranei produces C50 carotenoids that have strong antioxidant properties. The response surface methodology (RSM) tool helps to accurately analyze the most suitable conditions to maximize C50 carotenoids production by haloarchaea. The effects of temperature (15–50 °C), pH (4−10), and salinity (5–28% NaCl (w/v)) on the growth and carotenoid content of H. mediterranei were analyzed using the RSM approach. Growth was determined by measuring the turbidity at 600 nm. To determine the carotenoid content, harvested cells were lysed by freeze/thawing, then re-suspended in acetone and the total carotenoid content determined by measuring the absorbance at 494 nm. The analysis of carotenoids was performed by an HPLC system coupled with mass spectrometry. The results indicated the theoretical optimal conditions of 36.51 or 36.81 °C, pH of 8.20 or 8.96, and 15.01% or 12.03% (w/v) salinity for the growth of haloarchaea (OD600 = 12.5 ± 0.64) and production of total carotenoids (3.34 ± 0.29 mg/L), respectively. These conditions were validated experimentally for growth (OD600 = 13.72 ± 0.98) and carotenoid production (3.74 ± 0.20 mg/L). The carotenoid profile showed four isomers of bacterioruberin (89.13%). Our findings suggest that the RSM approach is highly useful for determining optimal conditions for large-scale production of bacterioruberin by haloarchaea.

Read accessible full text

Optimization of Growth and Carotenoid Production by Haloferax mediterranei Using Response Surface Methodology

Author: Montero Lobato, Zaida; Ramos-Merchante, Adrián; Fuentes, Juan Luis; Sayago, Ana; Fernández Recamales, Ángeles; Martínez Espinosa, Rosa María; Vega Piqueres, José María; Vílchez, Carlos; Garbayo, Inés
Publisher: MDPI
Year: 2018
DOI: 10.3390/md16100372
Source: https://idus.us.es/bitstreams/11c4acd6-68a6-41c2-a8a8-10ae6d246cb3/download
ma ine d ugs
A icle
Op imiza ion o G ow h and Ca o enoid P oduc ion
by Halo e ax medi e anei Using Response
Su ace Me hodology
Zaida Mon e o-Loba o 1, Ad ián Ramos-Me chan e 2, Juan Luis Fuen es 1, Ana Sayago 3,
Ángeles Fe nández-Recamales 3, Rosa Ma ía Ma ínez-Espinosa 4, JoséMa ía Vega 5,
Ca los Vílchez 1,* and Inés Ga bayo 1
1Algal Bio echnology G oup, CIDERTA and RENSMA, Uni e si y o Huel a, 21071 Huel a, Spain;
[email p o ec ed] (Z.M.-L.); [email p o ec ed] (J.L.F.); [email p o ec ed] (I.G.)
2Depa men o In eg a ed Sciences, Facul y o Expe imen al Sciences, Uni e si y o Huel a,
21007 Huel a, Spain; [email p o ec ed]
3Depa men o Chemis y, Facul y o Expe imen al Sciences, Uni e si y o Huel a, 21007 Huel a, Spain;
[email p o ec ed] (A.S.); [email p o ec ed] (A.F.-R.)
4Biochemis y and Molecula Biology Di ision, Ag ochemis y and Biochemis y Depa men ,
Facul y o Sciences, Uni e si y o Alican e, E-03080 Alican e, Spain; [email p o ec ed]
5Depa men o Plan Biochemis y and Molecula Biology, Facul y o Chemis y, Uni e si y o Se ille,
41012 Se ille, Spain; [email p o ec ed]
*Co espondence: [email p o ec ed]; Tel.: +34-959-218-442
Recei ed: 11 Sep embe 2018; Accep ed: 3 Oc obe 2018; Published: 9 Oc obe 2018


Abs ac :
Halo e ax medi e anei p oduces C50 ca o enoids ha ha e s ong an ioxidan p ope ies.
The esponse su ace me hodology (RSM) ool helps o accu a ely analyze he mos sui able condi ions
o maximize C50 ca o enoids p oduc ion by haloa chaea. The e ec s o empe a u e (15–50
◦
C),
pH (4
−
10), and salini y (5–28% NaCl (w/ )) on he g ow h and ca o enoid con en o H. medi e anei
we e analyzed using he RSM app oach. G ow h was de e mined by measu ing he u bidi y
a 600 nm. To de e mine he ca o enoid con en , ha es ed cells we e lysed by eeze/ hawing,
hen e-suspended in ace one and he o al ca o enoid con en de e mined by measu ing he
abso bance a 494 nm. The analysis o ca o enoids was pe o med by an HPLC sys em coupled wi h
mass spec ome y. The esul s indica ed he heo e ical op imal condi ions o 36.51 o 36.81
◦
C, pH o
8.20 o 8.96, and 15.01% o 12.03% (w/ ) salini y o he g ow h o haloa chaea (
OD600 = 12.5 ±0.64
)
and p oduc ion o o al ca o enoids (3.34
±
0.29 mg/L), espec i ely. These condi ions we e alida ed
expe imen ally o g ow h (OD600 = 13.72
±
0.98) and ca o enoid p oduc ion (3.74
±
0.20 mg/L).
The ca o enoid p o ile showed ou isome s o bac e io ube in (89.13%). Ou indings sugges ha
he RSM app oach is highly use ul o de e mining op imal condi ions o la ge-scale p oduc ion o
bac e io ube in by haloa chaea.
Keywo ds:
bac e io ube in; Halo e ax medi e anei; esponse su ace me hodology (RSM); cen al
composi e design (CCD)
1. In oduc ion
Ca o enoids (ca o enes and xan hophylls) a e pigmen s p esen in all li ing o ganisms; howe e ,
hey a e syn hesized only by bac e ia, algae, ungi, and plan s. They comp ise a la ge amily o
o e 700 na u ally-occu ing pigmen s cha ac e is ically p esen in lea es, lowe s, and ui s o
plan s, whe e hey play a ious oles. In plan s and algae, hey u ilize ligh ene gy o suppo he
chlo ophyll-dependen pho osyn he ic elec on low inside he chlo oplas s. In addi ion, ca o enoids
Ma . D ugs 2018,16, 372; doi:10.3390/md16100372 www.mdpi.com/jou nal/ma ined ugs
Ma . D ugs 2018,16, 372 2 o 12
dissipa e excess ligh ene gy and owing o hei an ioxidan ac i i y, p o ec he pho osyn he ic
machine y agains pho oinhibi ion caused by ee oxygen adicals [1].
Ca o enoids also play an impo an ole in human heal h by ac ing as p o i amin A, which p o ec s
agains macula degene a i e disease and cance . These e ec s, coupled wi h he ac ha humans
use ca o enoids om hei die , make hese pigmen s highly aluable o oods, pha maceu ics,
and cosme ics indus ies. Al hough hey a e usually comme cially p oduced by chemical syn hesis,
mic oo ganisms can also be impo an al e na i e sou ces o ca o enoids and hei ac i e isome s.
β
-Ca o ene, as axan hin, lu ein, and can haxan hin a e C40 ca o enoids, which a e highly aluable o
bio echnological pu poses [2,3].
Halophilic a chaea include mic oo ganisms ha g ow op imally in cul u e media wi h high sal
concen a ions o up o 4 M. The amily Halo e acaceae comp ise non-pho osyn he ic and la gely
ae obic he e o ophs, which p oduce ca o enoids as componen s o hei cy oplasmic memb anes,
especially unde condi ions o low salini y in he medium [
4
]. Apa om ca o enoids, haloa chaea
also p oduce high-added- alue p oduc s o bio echnological in e es , such as enzymes capable
o being ac i e a high empe a u e and high ionic s eng h, polysaccha ides, polyalkanoa es,
and polyhyd oxybu y a e [
5
]. In addi ion, Halo e ax medi e anei exc e es halocins capable o killing
o he a chaea. Halocin H4 is a p o ein o mass 34.9 kDa ha a ge s he plasma memb ane o
mic oo ganisms, e ec ing change in pe meabili y and causing ionic imbalance [6].
Usually, he C50 ca o enoid bac e io ube in and i s de i a i es monoanhyd obac e io ube in
and bisanhyd obac e io ube in a e he majo ca o enoids p oduced by halophilic a chaea.
These ca o enoids may be ound as ans and cis isome s [
7
]. They imp o e he igidi y and luidi y
o he cell memb ane [
8
], and, owing o hei s ong an ioxidan p ope ies, p o ec he cells om he
ha m ul e ec s o adia ion ene gy as well as om osmo ic s ess p oduced by low salini y in he
medium [
9
,
10
]. Se e al halophilic bac e ia also p oduce o he ca o enoids such as
β
-ca o ene, lycopene,
and can haxan hin [
11
,
12
]. C50 ca o enoids p oduced by haloa chaea possess highe an ioxidan
capaci y han C40 ca o enoids p oduced by mos pho osyn he ic o ganisms, due o he highe numbe
o pai s o conjuga ed double bonds. C50 ca o enoids a e he e o e in e es ing in ood applica ions and
o he pha maceu ical indus y. The ela i e p opo ion o bac e io ube in con en in cells depends on
he s ain o haloa chaea and he cul u e condi ions used, pa icula ly empe a u e, pH, and salini y.
O he ac o s such as he addi ion o selec ed o ganic compounds o he cul u e medium also in luences
he ca o enoid p oduc ion o halophilic a chaea [
12
]. The cul u e condi ions should be se be o ehand
o maximize biomass yield and ca o enoid p oduc ion, he eby imp o ing yield and educing cos s [
5
].
S udies on he bio echnological use o halophilic a chaea a e sca ce, despi e he widesp ead
in e es in C50 ca o enoids, and H. medi e anei can be a good candida e due o i s abili y o g ow h in a
wide ange o empe a u es, pH, and salini y. Gene ally, he app oach o s anda dize and op imize he
condi ions o g ow h and ca o enoid p oduc ion simul aneously, pa icula ly a la ge-scale p oduc ion,
is complica ed [
7
,
13
]. S a is ical expe imen al me hods such as cen al composi e design (CCD) and
esponse su ace me hodology (RSM) can be used in mic obial p ocesses o de e mine he condi ions
o op imal p oduc i i y [
14
]. We demons a e ha RSM is use ul o op imiza ion o condi ions o
g ow h a e and ca o enoid p oduc ion by H. medi e anei a he labo a o y scale. This app oach will be
aluable o ca o enoid p oduc ion a he indus ial scale.
2. Resul s and Discussion
2.1. E ec o Ai Volume inside he Cul u e Flasks and Speed o Agi a ion on he G ow h Ra e o
H. medi e anei
Oxygen supply is essen ial o op imal g ow h and ca o enoid p oduc ion in haloa chaea [
15
].
The in luence o ai olume inside he cul u e lasks on he g ow h a e o H. medi e anei was e alua ed
while all he o he cul u e condi ions we e kep cons an . This s udy was no aimed a de e mining he
op imal ai phase olume o p oduc ion o H. medi e anei as i depends on he cul i a ion sys em
design and pa ame e s speci ically selec ed in each p oduc ion p ocess. Howe e , an ai phase olume
Ma . D ugs 2018,16, 372 3 o 12
was used in his s udy so ha he oxygen a ailabili y allowed H. medi e anei o comple e g ow h
un il he s a iona y phase. Ai occupying 20%, 40%, o 60% o he cul u e lask olume was kep in
con ac wi h he cell cul u e in liquid medium and agi a ed a 100 pm. In he g ow h condi ions
and cul i a ion sys em used in his s udy (see Ma e ials and Me hods), he op imal g ow h a e o
H. medi e anei was obse ed in he cul u e wi h 60% ai phase in he lask, hus emphasizing he
impo ance o oxygen o his haloa chaeon (Figu e 1A). Expe imen s wi h 80% ai phase in he lask
did no suppose a signi ican imp o emen o he ha chaeal p oduc i i y (da a no shown).
The e ec o cul u e agi a ion speed on he g ow h a e o H. medi e anei was also e alua ed
using h ee di e en condi ions: no agi a ion (0 pm), 100 pm, o 150 pm, a 60% ai phase. Figu e 1B
shows ha an op imal g ow h a e o he haloa chaeon was ob ained in cul u es agi a ed a 150 pm,
bu signi ican g ow h was also obse ed a 100 pm. No g ow h was obse ed in non-gi a ed cul u es
(0 pm), hus con i ming ha good ae a ion is absolu ely essen ial o sus ain he haloa chaeal g ow h.
These indings a e consis en wi h hose epo ed o H. alexand inus, he op imal g ow h o which was
ob ained in 100 mL cul u e medium in 500 mL lasks (80% ai phase) [
16
], and Halo ub um sp. SHI,
which equi ed agi a ion a 550 pm o op imal g ow h in 50 mL o cul u e medium in 250 mL lasks
(80% ai phase) [17].
Ma . D ugs 2018, 16, x 3 o 12
an ai phase olume was used in his s udy so ha he oxygen a ailabili y allowed H. medi e anei o
comple e g ow h un il he s a iona y phase. Ai occupying 20%, 40%, o 60% o he cul u e lask
olume was kep in con ac wi h he cell cul u e in liquid medium and agi a ed a 100 pm. In he
g ow h condi ions and cul i a ion sys em used in his s udy (see Ma e ials and Me hods), he op imal
g ow h a e o H. medi e anei was obse ed in he cul u e wi h 60% ai phase in he lask, hus
emphasizing he impo ance o oxygen o his haloa chaeon (Figu e 1A). Expe imen s wi h 80% ai
phase in he lask did no suppose a signi ican imp o emen o he ha chaeal p oduc i i y (da a no
shown).
The e ec o cul u e agi a ion speed on he g ow h a e o H. medi e anei was also e alua ed
using h ee di e en condi ions: no agi a ion (0 pm), 100 pm, o 150 pm, a 60% ai phase. Figu e
1B shows ha an op imal g ow h a e o he haloa chaeon was ob ained in cul u es agi a ed a 150
pm, bu signi ican g ow h was also obse ed a 100 pm. No g ow h was obse ed in non-gi a ed
cul u es (0 pm), hus con i ming ha good ae a ion is absolu ely essen ial o sus ain he haloa chaeal
g ow h. These indings a e consis en wi h hose epo ed o H. alexand inus, he op imal g ow h o
which was ob ained in 100 mL cul u e medium in 500 mL lasks (80% ai phase) [16], and Halo ub um
sp. SHI, which equi ed agi a ion a 550 pm o op imal g ow h in 50 mL o cul u e medium in 250
mL lasks (80% ai phase) [17].
Figu e 1. E ec o ai phase (A) and shake speed (B) o cul u es on he g ow h o H. medi e anei.
Cells we e g own unde s anda d condi ions, as s a ed in Ma e ials and Me hods, and using he
indica ed ai phase and shake speed. When indica ed, he u bidi y o he cul u e was de e mined a
600 nm.
Fo he ope a ion, we used condi ions o agi a ion speed o 150 pm and 60% ai phase in he
cul u e lasks. Unde hese condi ions, H. medi e anei showed a gene a ion ime o 33.6 h and
maximum p oduc i i y o 22.16 g d y weigh /L. This yield is signi ican ly be e han ha ob ained
p e iously, no only wi h H. medi e anei [13], bu also o he ae obic haloa chaea [14]. Apa om he
a ailabili y o oxygen, g ow h o H. medi e anei also depends on salini y, pH, and empe a u e o he
cul u e medium [18]. Acco ding o Schneegu (2012) [19], a 10% inc ease in salini y educes oxygen
solubili y in he cul u e by app oxima ely 50%, which migh ha e an impac on he a ailabili y o
oxygen o he haloa chaea cells. Oxygen solubili y also dec eases as he empe a u e inc eases o pH
dec eases, hus indica ing ha salini y, empe a u e, and pH ha e a complex in luence on he g ow h
a e o H. medi e anei cul u es.
Ligh is usually impo an o he egula ion o ca o enoid syn hesis in many ypes o
mic oo ganisms. Howe e , we ound no di e ences ei he in pigmen a ion o in biomass
concen a ion o H. medi e anei when cul i a ed in absence o p esence o ligh (da a no shown). The
e ec o ligh on pigmen a ion o halophilic a chaea g ea ly depends on species and s ains. Fo
ins ance, s ains Hb . salina um ATCC 33170, Hb . salina um ATCC 43214 and H x. alexand inus TM
(JCM 10717T), showed no di e ence in pigmen a ion when cul i a ed in he absence o in he
Figu e 1.
E ec o ai phase (
A
) and shake speed (
B
) o cul u es on he g ow h o H. medi e anei.
Cells we e g own unde s anda d condi ions, as s a ed in Ma e ials and Me hods, and using he
indica ed ai phase and shake speed. When indica ed, he u bidi y o he cul u e was de e mined a
600 nm.
Fo he ope a ion, we used condi ions o agi a ion speed o 150 pm and 60% ai phase in
he cul u e lasks. Unde hese condi ions, H. medi e anei showed a gene a ion ime o 33.6 h and
maximum p oduc i i y o 22.16 g d y weigh /L. This yield is signi ican ly be e han ha ob ained
p e iously, no only wi h H. medi e anei [
13
], bu also o he ae obic haloa chaea [
14
]. Apa om he
a ailabili y o oxygen, g ow h o H. medi e anei also depends on salini y, pH, and empe a u e o he
cul u e medium [
18
]. Acco ding o Schneegu (2012) [
19
], a 10% inc ease in salini y educes oxygen
solubili y in he cul u e by app oxima ely 50%, which migh ha e an impac on he a ailabili y o
oxygen o he haloa chaea cells. Oxygen solubili y also dec eases as he empe a u e inc eases o pH
dec eases, hus indica ing ha salini y, empe a u e, and pH ha e a complex in luence on he g ow h
a e o H. medi e anei cul u es.
Ligh is usually impo an o he egula ion o ca o enoid syn hesis in many ypes o
mic oo ganisms. Howe e , we ound no di e ences ei he in pigmen a ion o in biomass concen a ion
o H. medi e anei when cul i a ed in absence o p esence o ligh (da a no shown). The e ec o
ligh on pigmen a ion o halophilic a chaea g ea ly depends on species and s ains. Fo ins ance,
s ains Hb . salina um ATCC 33170, Hb . salina um ATCC 43214 and H x. alexand inus TM (JCM 10717T),
showed no di e ence in pigmen a ion when cul i a ed in he absence o in he p esence o ligh .
Howe e , he pigmen composi ion o Hb . salina um JCM 10927 al e s acco ding o ligh condi ions,
Ma . D ugs 2018,16, 372 4 o 12
pa icula ly by inc easing he bac e io ube in con en and dec easing he con en o C40 ca o enoids [
7
].
Thus, he e ec o ligh should be s udied o each speci ic halophilic mic oo ganism.
2.2. Use o RSM o Op imize Cul u e Condi ions o G ow h and Ca o enoid P oduc ion by H. medi e anei
Cen al composi e design (CCD) was used o de ine he expe imen al g ow h condi ions,
which should ob ain he p edic i e model o op imal g ow h and ca o enoids p oduc ion by
H. medi e anei. As can be seen in Figu e 1B, he cul u e a 60% ai phase and an agi a ion a e
o 150 pm is a he la e loga i hmic phase on day 4, which seems adequa e o measu emen s in he
CCD expe imen s. Acco dingly, 20 cul i a ion expe imen s we e un on an o bi al shake using he
pa ame e s o agi a ion speed and ai olume ac ion de ined abo e (150 pm and 60%, espec i ely).
The CCD and yield pa ame e s a e summa ized in Table 1, which de e mined he esponse models in
h ee-dimensional su aces o he a iables o haloa chaea g ow h (Figu e 2A–C) and o al ca o enoid
con en (Figu e 2D–F). Acco ding o he model, op imal g ow h o H. medi e anei should be ob ained
a 36.51 ◦C, pH o 8.20, and 15.01% (w/ ) NaCl.
Table 1.
Cen al composi e design (CCD) ma ix and he esponses o g ow h and o al ca o enoid
con en a di e en empe a u e, pH, and salini y le els. S d O de : S anda d O de .
Independen Va iables Responses
Coded Le els
S d O de Tempe a u e (◦C) pH Salini y
(NaCl% w/ )
Tu bidi y
(O.D.600 nm)
To al Ca o enoids
(mg/L)
1−1 23.8 −1 5.5 −1 9.8 2.53 0.28
2 1 23.8 −1 8.5 −1 9.8 3.09 1.61
3−1 41.3 1 5.5 −1 9.8 7.88 0.80
4 1 41.3 1 8.5 −1 9.8 11.79 3.12
5−1 23.8 −1 5.5 1 23.3 0.88 1.34
6 1 23.8 −1 8.5 1 23.3 5.31 1.05
7−1 41.3 1 5.5 1 23.3 2.04 0.24
8 1 41.3 1 8.5 1 23.3 7.25 0.78
9−1.68 32.5 0 4.5 0 16.5 1.01 0.19
10 1.68 32.5 0 9.5 0 16.5 11.51 2.85
11 0 17.8 1.68 7.0 0 16.5 0.29 0.13
12 0 47.2 1.68 7.0 0 16.5 5.14 0.85
13 0 32.5 0 7.0 −1.68 5.1 5.22 0.66
14 0 32.5 0 7.0 1.68 27.9 3.82 0.37
15 * 0 32.5 0 7.0 0 16.5 10.93 3.34
16 * 0 32.5 0 7.0 0 16.5 11.25 3.13
17 * 0 32.5 0 7.0 0 16.5 10.78 2.40
18 * 0 32.5 0 7.0 0 16.5 10.62 2.71
19 * 0 32.5 0 7.0 0 16.5 11.21 2.50
20 * 0 32.5 0 7.0 0 16.5 12.34 3.07
* Cen al poin alues con ibu ing o he deg ee o eedom o pu e e o calcula ion.
Ma . D ugs 2018,16, 372 5 o 12
Ma . D ugs 2018, 16, x 5 o 12
Figu e 2. The 3-D-su ace and con ou esponse plo s gene a ed om a quad a ic model ep esen ing
he combined e ec s o empe a u e, pH, and salini y on he g ow h a e (A–C) and ca o enoids
con en (D–F) by liquid cul u es o H x. medi e anei. The in e ac ions be ween salini y and
empe a u e (A) and (D); pH and empe a u e (B) and (E), and pH and salini y (C) and (F) we e
analyzed. O he de ails o expe imen al condi ions a e s a ed in he Ma e ials and Me hods sec ion.
The ollowing equa ion could be used o p edic he O.D. a 600 nm unde di e en condi ions:
𝑂.𝐷.600 𝑛𝑚 =−85.1 + 8.74 · 𝑋+2.681·𝑋+1.729·𝑋−0.681·𝑋
 –0.03635·𝑋

− 0.04710 𝑋
 + 0.0394 𝑋·𝑋 + 0.0639 𝑋·𝑋− 0.02318 𝑋·𝑋 (1)
whe e X
1
, X
2
, X
3
deno e empe a u e, pH, and salini y, espec i ely (see Table 3).
On he o he hand, he maximum o al ca o enoid con en in cul u es o H. medi e anei cells
should be obse ed a 36.81 °C, pH o 8.96, and 12.03% o NaCl. The ca o enoid con en a any poin
du ing he cul u e and di e en condi ions could be p edic ed acco ding o he ollowing equa ion:
Figu e 2.
The 3-D-su ace and con ou esponse plo s gene a ed om a quad a ic model ep esen ing
he combined e ec s o empe a u e, pH, and salini y on he g ow h a e (
A
–
C
) and ca o enoids con en
(
D
–
F
) by liquid cul u es o H x. medi e anei. The in e ac ions be ween salini y and empe a u e (
A
)
and (
D
); pH and empe a u e (
B
) and (
E
), and pH and salini y (
C
) and (
F
) we e analyzed. O he de ails
o expe imen al condi ions a e s a ed in he Ma e ials and Me hods sec ion.
The ollowing equa ion could be used o p edic he O.D. a 600 nm unde di e en condi ions:
O.D.600 nm =−85.1 +8.74·X2+2.681·X1+1.729·X3−0.681·X2
2−0.03635·X2
1
−0.04710 X2
3+0.0394 X2·X1+0.0639 X2·X3−0.02318 X1·X3
(1)
whe e X1,X2,X3deno e empe a u e, pH, and salini y, espec i ely (see Table 3).

Ma . D ugs 2018,16, 372 6 o 12
On he o he hand, he maximum o al ca o enoid con en in cul u es o H. medi e anei cells
should be obse ed a 36.81
◦
C, pH o 8.96, and 12.03% o NaCl. The ca o enoid con en a any poin
du ing he cul u e and di e en condi ions could be p edic ed acco ding o he ollowing equa ion:
Ca o enoidsmg
L=−27.78 +2.913·X2+0.647·X1+1.027·X3
−0.1692·X2
2−0.00974·X2
1−0.01612·X2
3+0.0171 X2·X1−0.0419 X2−X3−0.00718 X1−X3(2)
Using he one- ac o -a -a- ime app oach, op imal condi ions o p oduce ca o enoids (2.06 mg/g
d y weigh o cells) by H. alexand inus we e 37
◦
C, pH o 7.2, and 25% NaCl [
16
], which a e conside ably
di e en o his s udy, hus ei e a ing he impo ance o he haloa chaea species used and he
in e ac ions be ween ac o s.
2.3. Valida ion o he Op imal Condi ions o G ow h and To al Ca o enoid P oduc ion by H. medi e anei
The accu acy o he model was e i ied by analyzing he p edic ed and obse ed expe imen al
esul s. Th ee expe imen s we e ca ied ou o de e mine he eliabili y o op imal condi ions p edic ed
by he models o Equa ions (1) and (2), using he da a ob ained o biomass and o al ca o enoid
con en , espec i ely. Figu e 3shows ha high alues o R
2
(93.1%) and adjus ed R
2
(92.7%) highligh
he ag eemen be ween p edic ed and obse ed expe imen al alues. Hence, an accep able ela ionship
be ween independen a iables ( empe a u e, pH, and salini y) and esponse a iables (g ow h and
o al ca o enoids) was p o ed. The highes biomass p oduc ion (21.95
±
1.57 g d y weigh /L) and
o al ca o enoid con en (3.74
±
0.20 mg/L) we e e y close o he alues es ima ed using RSM a he
op imal condi ions (20.18
±
1.02 g d y weigh /L, and 3.34
±
0.29 mg/L, espec i ely) indica ing ha
RSM is e ec i e in ixing cul u e condi ions whe e se e al a iables could in luence he inal esul .
I can also p edic esul s o o he po en ial cul u e condi ions o he haloa chaea, as epo ed by he
au ho s o Re e ence [14], in simila s udies on Halo ub um sp. TZB126.
Ma . D ugs 2018, 16, x 6 o 12
𝐶𝑎𝑟𝑜𝑡𝑒𝑛𝑜𝑖𝑑𝑠󰇡𝑚𝑔
𝐿󰇢= −27.78 + 2.913 · 𝑋+ 0.647 · 𝑋 + 1.027 · 𝑋
−0.1692·𝑋
− 0.00974 · 𝑋
−0.01612·𝑋

+ 0.0171 𝑋·𝑋
− 0.0419 𝑋−𝑋− 0.00718 𝑋−𝑋
(2)
Using he one- ac o -a -a- ime app oach, op imal condi ions o p oduce ca o enoids (2.06 mg/g
d y weigh o cells) by H. alexand inus we e 37 °C, pH o 7.2, and 25% NaCl [16], which a e
conside ably di e en o his s udy, hus ei e a ing he impo ance o he haloa chaea species used
and he in e ac ions be ween ac o s.
2.3. Valida ion o he Op imal Condi ions o G ow h and To al Ca o enoid P oduc ion by H. medi e anei
The accu acy o he model was e i ied by analyzing he p edic ed and obse ed expe imen al
esul s. Th ee expe imen s we e ca ied ou o de e mine he eliabili y o op imal condi ions
p edic ed by he models o Equa ions (1) and (2), using he da a ob ained o biomass and o al
ca o enoid con en , espec i ely. Figu e 3 shows ha high alues o R2 (93.1%) and adjus ed R2 (92.7%)
highligh he ag eemen be ween p edic ed and obse ed expe imen al alues. Hence, an accep able
ela ionship be ween independen a iables ( empe a u e, pH, and salini y) and esponse a iables
(g ow h and o al ca o enoids) was p o ed. The highes biomass p oduc ion (21.95 ± 1.57 g d y
weigh /L) and o al ca o enoid con en (3.74 ± 0.20 mg/L) we e e y close o he alues es ima ed
using RSM a he op imal condi ions (20.18 ± 1.02 g d y weigh /L, and 3.34 ± 0.29 mg/L, espec i ely)
indica ing ha RSM is e ec i e in ixing cul u e condi ions whe e se e al a iables could in luence
he inal esul . I can also p edic esul s o o he po en ial cul u e condi ions o he haloa chaea, as
epo ed by he au ho s o Re e ence [14], in simila s udies on Halo ub um sp. TZB126.
Figu e 3. Theo e ical alues o esponse a iables p edic ed om he espec i e models and obse ed
alues o he expe imen al design wi h a p- alue < 0.05 o he g ow h a e and o al in acellula
ca o enoids by H x. medi e anei. The g ow h and ca o enoids con en a e as desc ibed in Ma e ials
and Me hods. CI = eliable in e al and PI = p edic ed in e al.
The da a demons a es o he i s ime in H. medi e anei ha he RSM app oach migh be used
o p edic op imal condi ions o la ge scale ca o enoid p oduc ion.
2.4. Ca o enoid P o ile Ob ained om H. medi e anei
Bac e io ube in is he majo C50 ca o enoid in all he a chaeal s ains, howe e , β-ca o ene,
lycopene, as axan hin, and can haxan hin we e also ound in hese o ganisms [3,20]. The p o ile o
he ca o enoid ob ained om H. medi e anei was analyzed using HPLC, and he esul s e ealed a
ch oma og am wi h 10 peaks whe e bac e io ube in (89.13%) was he majo compound p oduced
unde he op imal condi ions used o ca o enoid p oduc ion (Figu e 4A). Peaks 1–4 had he same
molecula weigh (Table 2). Figu e 4B shows a simila 3- inge ype abso p ion spec um o hese
ca o enoid ac ions wi h ypical bac e io ube in abso p ion maxima a 468, 495, and 530 nm, he eby
indica ing ha hey we e isome s o he main ca o enoid, p obably 13-cis-bac e io ube in and 9-cis-
Figu e 3.
Theo e ical alues o esponse a iables p edic ed om he espec i e models and obse ed
alues o he expe imen al design wi h a p- alue < 0.05 o he g ow h a e and o al in acellula
ca o enoids by H x. medi e anei. The g ow h and ca o enoids con en a e as desc ibed in Ma e ials and
Me hods. CI = eliable in e al and PI = p edic ed in e al.
The da a demons a es o he i s ime in H. medi e anei ha he RSM app oach migh be used
o p edic op imal condi ions o la ge scale ca o enoid p oduc ion.
2.4. Ca o enoid P o ile Ob ained om H. medi e anei
Bac e io ube in is he majo C
50
ca o enoid in all he a chaeal s ains, howe e ,
β
-ca o ene,
lycopene, as axan hin, and can haxan hin we e also ound in hese o ganisms [
3
,
20
]. The p o ile o
he ca o enoid ob ained om H. medi e anei was analyzed using HPLC, and he esul s e ealed a
Ma . D ugs 2018,16, 372 7 o 12
ch oma og am wi h 10 peaks whe e bac e io ube in (89.13%) was he majo compound p oduced
unde he op imal condi ions used o ca o enoid p oduc ion (Figu e 4A). Peaks 1–4 had he same
molecula weigh (Table 2). Figu e 4B shows a simila 3- inge ype abso p ion spec um o hese
ca o enoid ac ions wi h ypical bac e io ube in abso p ion maxima a 468, 495, and 530 nm, he eby
indica ing ha hey we e isome s o he main ca o enoid, p obably 13-cis-bac e io ube in and
9-cis-bac e io ube in, espec i ely [
9
]. Howe e , he de ini i e s uc u es o peaks 1-4 canno be
elucida ed un il u he s udies a e done.
Ma . D ugs 2018, 16, x 7 o 12
bac e io ube in, espec i ely [9]. Howe e , he de ini i e s uc u es o peaks 1-4 canno be elucida ed
un il u he s udies a e done.
Figu e 4. HPLC analysis o he ca o enoids p esen in H x. medi e anei (A) and he abso p ion
spec um o isola ed bac e io ube in (B). Peaks 1–4 a e he isome s o bac e io ube in, peaks 5, 6, 7, 8,
9, and 10 a e C50 ca o enoid de i a i es om bac e io ube in. Fu he expe imen al condi ions a e
indica ed in he Ma e ials and Me hods.
Figu e 4A also e eals o he mino peaks co esponding o chemically modi ied bac e io ube in-
de i ed compounds such as monoanhyd obac e io ube in and bisanhyd obac e io ube in [13], he
molecula weigh s di e ed om bac e io ube in (Table 2). The o he peaks obse ed in he
ch oma og am co esponded o unknown ca o enoids. Calo e al. (1995) [21] epo ed 3-
hyd oxyechinenone as a majo ca o enoid o H. medi e anei. Howe e , he exis ence o 3-
hyd oxyechinenone in H. medi e anei has no been e e ed o in any o he pape a e 1995. O he
s udies on H. medi e anei epo ed 70% and 52.4% bac e io ube in in he ca o enoid ac ion [8,13],
espec i ely, indica ing he in luence o he cul u e condi ions on he yields o ca o enoids and
composi ion o he haloa chaea. By inc easing he amoun o magnesium sul a e in he medium, he
ela i e a io o bac e io ube in was inc eased, eaching a cons an le el a 8% (w/ ) o magnesium
[13]. In ou s udy, 2% magnesium sul a e was used in he cul u e medium o H. medi e anei. The
bac e io ube in con en ob ained om o he haloa chaea is highly a iable, as shown in Re e ence
[14], (98.1% in Halo ub um sp.); [10], (68.1% in Haloa cula japonica); and [22], (49.2% in Halobac e ium
SP–2 and 55.3% in Halo ub um SP–4). These da a show ha H. medi e anei g own unde he
condi ions s a ed in his wo k con ains high le els o bac e io ube in compa ed wi h o he
haloa chaea.
Table 2. Ten a i e iden i ica ion o ca o enoids p esen in Halo e ax medi e anei. BR: bac e io ube in;
MABR: monoanhyd obac e io ube in; BABR: bisanhyd obac e io ube in.
Peak Ca o enoid Re en ion
Time (min) λmax (nm) Molecula Ion
(m/z) M+ F agmen s P o ile
1 BR 2.325 468, 496, 530 740.7 723.7, 705.7, 687.7, 666.7, 561.5, 515,1
2 BR 2.553 468, 494, 528 740.7 723.7, 705.7, 681,6, 666.8, 655.6, 627.6
3 BR 2.740 468, 496, 528 740.7 723.7, 705.7, 682.6, 669.6, 665.6
4 BR 2.816 464, 494, 524 740.7 723.7, 705.7, 682.6, 665.6
5 MABR 3.021 470, 500, 534 737.7 725.6, 709.6, 699.7
6 BABR 3.168 460, 488, 520 705.7 681.6, 669.7, 579.7, 522.7
7 BABR 3.233 456, 485, 526 705.7 699.7, 671.7, 668.7, 647.6, 579.6
8 BABR 3.508 472, 498, 532 705.7 699.7, 687.7, 671.7, 653.8, 607.6
9 BABR 3.620 468, 490, 520 705.7 699.7, 671.7, 653.8, 550.6
Figu e 4.
HPLC analysis o he ca o enoids p esen in H x. medi e anei (
A
) and he abso p ion spec um
o isola ed bac e io ube in (
B
). Peaks 1–4 a e he isome s o bac e io ube in, peaks 5, 6, 7, 8, 9, and 10
a e C
50
ca o enoid de i a i es om bac e io ube in. Fu he expe imen al condi ions a e indica ed in
he Ma e ials and Me hods.
Figu e 4A also e eals o he mino peaks co esponding o chemically modi ied
bac e io ube in-de i ed compounds such as monoanhyd obac e io ube in and
bisanhyd obac e io ube in [
13
], he molecula weigh s di e ed om bac e io ube in (Table 2).
The o he peaks obse ed in he ch oma og am co esponded o unknown ca o enoids.
Calo e al. (1995) [21]
epo ed 3-hyd oxyechinenone as a majo ca o enoid o H. medi e anei.
Howe e , he exis ence o 3-hyd oxyechinenone in H. medi e anei has no been e e ed o in any
o he pape a e 1995. O he s udies on H. medi e anei epo ed 70% and 52.4% bac e io ube in in
he ca o enoid ac ion [
8
,
13
], espec i ely, indica ing he in luence o he cul u e condi ions on he
yields o ca o enoids and composi ion o he haloa chaea. By inc easing he amoun o magnesium
sul a e in he medium, he ela i e a io o bac e io ube in was inc eased, eaching a cons an le el a
8% (w/ ) o magnesium [
13
]. In ou s udy, 2% magnesium sul a e was used in he cul u e medium
o H. medi e anei. The bac e io ube in con en ob ained om o he haloa chaea is highly a iable,
as shown in Re e ence [
14
], (98.1% in Halo ub um sp.); [
10
], (68.1% in Haloa cula japonica); and [
22
],
(49.2% in Halobac e ium SP–2 and 55.3% in Halo ub um SP–4). These da a show ha H. medi e anei
g own unde he condi ions s a ed in his wo k con ains high le els o bac e io ube in compa ed wi h
o he haloa chaea.
Ma . D ugs 2018,16, 372 8 o 12
Table 2.
Ten a i e iden i ica ion o ca o enoids p esen in Halo e ax medi e anei. BR: bac e io ube in;
MABR: monoanhyd obac e io ube in; BABR: bisanhyd obac e io ube in.
Peak Ca o enoid Re en ion
Time (min) λmax (nm) Molecula Ion
(m/z) M+F agmen s P o ile
1 BR 2.325 468, 496, 530 740.7
723.7, 705.7, 687.7, 666.7, 561.5, 515,1
2 BR 2.553 468, 494, 528 740.7
723.7, 705.7, 681,6, 666.8, 655.6, 627.6
3 BR 2.740 468, 496, 528 740.7 723.7, 705.7, 682.6, 669.6, 665.6
4 BR 2.816 464, 494, 524 740.7 723.7, 705.7, 682.6, 665.6
5 MABR 3.021 470, 500, 534 737.7 725.6, 709.6, 699.7
6 BABR 3.168 460, 488, 520 705.7 681.6, 669.7, 579.7, 522.7
7 BABR 3.233 456, 485, 526 705.7 699.7, 671.7, 668.7, 647.6, 579.6
8 BABR 3.508 472, 498, 532 705.7 699.7, 687.7, 671.7, 653.8, 607.6
9 BABR 3.620 468, 490, 520 705.7 699.7, 671.7, 653.8, 550.6
2.5. Bac e io ube in P oduc ion by H. medi e anei
The maximum ca o enoid yield in ou expe imen s was 3.74 mg/L (equi alen o 23.51 mg/g
d y weigh ), which is di e en om ha epo ed in o he haloa chaea. The yield o ca o enoids in
haloa chaea mainly depended on he s ain and on he cul u e condi ions used. H. alexand inus
accumula es 2.6 mg/g d y weigh [
16
]; Halobac e ium salina um, 45
µ
g/g d y weigh and
Halococcus mo huae, 89
µ
g/g d y weigh [
9
], Halobac e ium halobium, 7.63 mg/L [
23
], Halo ub um sp.,
10.78 mg/L [
14
], H. medi e anei, 125 mg/L [
8
], Haloa cula japonica, 335
µ
g/g d y weigh [
10
];
Halo ub um sp. SH1, 25 mg/L [
17
], and Halo e igena u kmenica, 32
µ
g/g d y weigh [
24
]. Howe e ,
in mos cases, he co esponding in o ma ion conce ning biomass p oduc ion and/o cell iabili y,
unde he condi ions used o ca o enoid p oduc ion a e absen , which makes i di icul o selec one
s ain o haloa chaea o la ge-scale p oduc ion o ca o enoids.
The chosen s a egy signi ican ly a ec s he inal cos s, as he ollowing op ions indica e:
(i) one-s ep p oduc ion unde op imal g ow h condi ions, in which he ca o enoid p oduc ion is
di ec ly linked o he biomass p oduc ion o he cul u es, o (ii) a wo-s ep sys em, whe eby he i s
s ep o biomass p oduc ion unde op imal g ow h condi ions is ollowed by he second phase o
cul i a ion unde s ess o p omo e biosyn hesis and accumula ion o ca o enoids. In ou s udy,
he sal con en in he cul u e medium seemed o es ablish he bes condi ions o ca o enoid
p oduc ion. Acco ding o li e a u e, haloa chaea equi e high sal concen a ion o op imal g ow h,
while maximum ca o enoid p oduc ion is achie ed when cells a e unde s ess p oduced by low
ex e nal salini y.
Chen e al. (2015)
[
8
] showed ha H. medi e anei g owing a 40 S/m conduc i i y
(a measu emen o sal concen a ion) in saline medium accumula ed 125 mg/L o o al ca o enoids;
howe e , i he conduc i i y o he medium was dec eased o 25 S/m, he pigmen s could be inc eased
o a maximum alue o 555.6 mg/L. F om Equa ions (2) and (3), we es ima ed ha H. medi e anei can
p oduce 3.34 mg/L o ca o enoids, while he heo e ical alue o he g ow h o haloa chaea unde
such condi ions is 18.51 g d y weigh /L, which co esponds o a loss o abou 7.5% o he biomass
p oduc i i y. Thus, he op ion o a one-s ep p ocess is adequa e o he high-scale bac e io ube in
p oduc ion by H. medi e anei. Fixing he op imal condi ions o ca o enoid p oduc ion inc eases he
bio echnological alue o his halophilic mic oo ganism.
Calega i-San os e al. (2016) [
7
] e iewed he e ec o di e en s ess condi ions on ca o enoids
p oduc ion in halophilic a chaea. In addi ion o he a iables conside ed in his wo k, he C-sou ce
and he p esence o absence o me als is also ele an . Howe e , he e ec o N-s a a ion and o he
nu i ional s ess ac o s emain o be examined.
3. Ma e ials and Me hods
3.1. Mic oo ganism
The highly halophilic a chaeon Halo e ax medi e anei, s ain R4 (ATCC 33500T), used in his
s udy, was p o ided by D . Rosa Ma ía Ma ínez om he Depa men o Ag ochemis y and
Ma . D ugs 2018,16, 372 9 o 12
Biochemis y, Uni e si y o Alican e, Spain. This a chaeon was i s isola ed and epo ed by he
au ho s o Re e ence [25], om saline wa e a San a Pola in Alican e (Spain).
3.2. G ow h Condi ions and Biomass Quan i ica ion
The haloa chaea we e g own in a basal cul u e medium as o mula ed in Re e ence [
13
], con aining
(pe li e ): Glucose, 10 g; NaCl, 156 g; MgCl
2·
6H
2
O, 13 g; MgSO
4·
7H
2
O, 20 g; CaCl
2·
6H
2
O, 1 g; KCl,
4 g; NaHCO
3
, 0.2 g; NaB , 0.5 g; yeas ex ac , 5 g; and he pH was adjus ed o 7.0 by addi ion o
dilu ed KOH o HCl. The mo he cul u e was p epa ed in 100 mL o liquid medium con ained in a
250 mL lask and incuba ed a 37
◦
C and 150 pm on an o bi al shake un il he exponen ial phase o
g ow h was achie ed (s anda d condi ions). This cul u e was used as inoculum a 10% ( / ), in all he
expe imen s. The g ow h was de e mined by measu ing he u bidi y o he cul u e a 600 nm using a
UV-Vis spec opho ome e (The mo Spec onic, Genesis, Wal ham, MA, USA). The d y weigh was
de e mined using 1 mL sample o he co esponding cul u e, which was il e ed h ough a p e-weighed
memb ane (
φ
= 0.2
µ
m) and he e ained cells we e washed on he il e using 5 mL o 1% NaCl (w/ )
solu ion. The memb ane was hen d ied a 80
◦
C un il a cons an weigh was eached. A con ol wi h
1 mL o uninocula ed cul u e medium was un in pa allel. The weigh was la e deduc ed om he
sample. Cul u e wi h OD o 1.0 a 600 nm had a d y weigh o 1.60 g/L.
3.3. Ex ac ion, Quan i ica ion, and Analysis o Pigmen s
Fo ex ac ion o ca o enoids, he cul u e samples (10 mL) we e cen i uged a 3500
×
g o 45 min,
he ha es ed cells we e lysed by eeze/ hawing, and inally, he biological ma e ial was esuspended
in 1 mL o pu e ace one and kep o e nigh a 4
◦
C. The suspension was cen i uged a 3500
×
g o
5 min. The o al ca o enoid con en o he supe na an was de e mined by measu ing he abso bance
a 494 nm and calcula ed using an ex inc ion coe icien ,
ε
(1%), o 2540, acco ding o he ollowing
exp ession: mg/L = (OD494/2540) ×104.
The HPLC analysis o ca o enoids in ace one was pe o med using a Po oshell 120-C18
column (Agilen , San a Cla a, CA, USA) (3
×
50 mm, 2.7
µ
m) on an Agilen 1200 se ies sys em
(
San a Cla a, CA, USA
) equipped wi h a diode a ay de ec o scanning om 400 o 690 nm.
To de e mine he mass spec a o he di e en compounds, a 6410 T iple Quad LC/MS sys em (Agilen ,
San a Cla a, CA, USA) was used equipped wi h an elec osp ay ioniza ion sou ce (ESI) ope a ing
in posi i e scan mode (m/z ange o 300–900), wi h
±
0.1 u.m.a. p ecision, and con olled by Mass
Hun e Wo ks a ion So wa e (Agilen , B.05.00, San a Cla a, CA, USA). The ollowing speci ic wo king
condi ions we e used: capilla y ol age 4000 V, gas low a e 10 L m
−1
, gas empe a u e 300
◦
C,
and nebulize p essu e 35 psi [17].
3.4. Response Su ace Me hodology Expe imen al Design
The one- ac o -a -a- ime app oach used o analyze a p oblem based on h ee o mo e pa ame e s
o e looks he in e ac ions be ween di e en ac o s [
26
]. To add ess hese issues, RSM was used o
iden i y he op imal alue o be applied in o de o de e mine he main e ec as well as any signi ican
in e ac ions be ween ac o s ha may exe impo an e ec s on esponse a iables [
14
,
27
,
28
]. A cen al
and axial poin s design (CCD) app oach was used o op imize he cul u e condi ions o bo h cell
g ow h (O.D. a 600 nm) and o al ca o enoid con en (mg/L) by H. medi e anei. In his s udy,
empe a u e, salini y, and pH we e conside ed o he CCD analysis. They we e in es iga ed a
i e di e en le els wi hin he ollowing anges: empe a u e (15–50
◦
C), pH (4
−
10), and NaCl
concen a ion (5–28%, w/ ) in o de o deduce he op imum alues o g ow h and ca o enoid con en .
The code and ac ual alues o he a iables a e p esen ed in Table 3.