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Vol.:(0123456789) 1 3 https://doi.org/10.1007/s10811-023-02907-2 Potential use ofSargassum muticum assource ofplant biostimulants afterthree different drying methods K.Baltrusch1· N.Flórez‑Fernández1· M.Illera2· M.D.Torres1· M.E.López‑Mosquera2· H.Domínguez1 Received: 16 September 2022 /Revised and accepted: 11 January 2023 © The Author(s) 2023 Abstract Seaweed derived biostimulants are gaining attention as an important tool in sustainable agriculture. This offers a unique opportunity to alleviate the environmental impact of Sargassum muticum (Ochrophyta, Phaeophyceae) as an invasive species by finding new applications for its biomass. In this sense, incorporating green extraction technologies is fundamental to ensure environmental-friendly goals. This research was initiated in an attempt to contribute to an integral valorization system of S. muticum biomass, exploring the biostimulant potential of the solubles obtained from pressed solids, through an autohydrolysis treatment. In addition, we compared the effect of three different liquid phase drying techniques (spray-drying, freeze-drying and convective air-drying). Low stress drying techniques as spray-drying showed better conservation of bioactive compounds and biostimulant potential. A bioassay with Nastrium officinale showed no phytotoxic effects despite high electric conductivity in most of the extracts and concentrations. Dried extracts showed mainly an amorphous structure but occasional crystal formation when spray-dried at low temperatures (Tout = 50 ºC) and after convective air drying (T = 40 ºC). Significant increases in root development were achieved at a concentration of 5mg L−1 of spray-dried extracts and 50mg L−1 in case of freeze-dried extracts. Munoo-Liisa vitality index showed best results with 50mg L−1 of freeze-dried extracts. This study provides important information about the influence of different drying techniques on the physicochemical properties and biostimulant potential of S. muticum aqueous extracts and contributes to the integral valorization of its biomass. Keywords Sargassum muticum· Biostimulant· Autohydrolysis· Freeze drying· Spray drying· Air convective drying Introduction Rising food demand and the conventional approach of global food economy have led to a massive an unsustainable intensification of agriculture, with harmful impacts on the environment and human health (Jackson etal. 2009; Stehle and Schulz 2015; Kazimierczak etal. 2016). Moreover, in a context of climate change, rising resource scarceness and rapid global population growth, production systems based on nonrenewable resources will not be sustainable in the long-term (Gomiero 2018; Pretty etal. 2018). Hence, the transition to a more sustainable agriculture should be a priority (Wanger etal. 2020); and is in fact aligned with the 12th Sustainable Development Goal of the UN’s 2030 Global Agenda. Nevertheless, to maintain or even increase crop productivity by reducing the use of synthetic fertilizers and pesticides, is one of the major concerns and challenges for a realistic transition (Pretty etal. 2018). Therefore, the quest for new sustainable strategies and green inputs will be essential to ensure global food security in the future. In this sense, the potential of natural products as seaweed represent a great opportunity towards sustainable food systems (Pacheco etal. 2021). Brown algae (Phaeophyceae) traditionally have been used as fertilizers in many coastal agrosystems due to their high concentrations in macro-elements as Ca, P and specially K (Hong etal. 2007; Bahcevandziev and Pereira 2021), showing a historical background as sustainable input. Their fertilizing benefits are well-documented, but the amount of seaweed needed for large-scale application could be a constraint. More recently, algal extracts are gaining attention as formulations with strong biostimulant properties, used at low concentrations but showing a huge effect on plant metabolism; * M. D. Torres mator[email protected] 1 CINBIO, Department ofChemical Engineering, Edificio Politécnico, Universidade de Vigo (Campus Ourense), As Lagoas, 32004Ourense, Spain 2 IBADER, Department ofPlant Production, University ofSantiago de Compostela, Lugo, Spain / Published online: 3 February 2023 Journal of Applied Phycology (2023) 35:921–933
1 3 stimulating plant growth, germination rate, root system development, improvement of nutrient use efficiency and abiotic stress tolerance (De Pascale etal. 2017; Pacheco etal. 2021). Sargassum muticum, the Japanese wireweed, is a brown seaweed originally from the northwest Pacific region. Now spread worldwide, it is one of the most-studied invasive marine species (Fernández 2020). Due to the difficulties of its eradication by conventional methods, valorization of S. muticum biomass has been proposed to encourage control strategies as seasonal harvesting (Kraan 2008; Milledge etal. 2016). There have been many studies on the potential of S. muticum as a phytoremediation agent in wastewater systems (Rubin etal. 2005; López-García etal. 2012), as fertilizer (Sharma etal. 2012), as well as a source of food, feed, nutraceuticals, pharmaceuticals and cosmetic products (Milledge etal. 2016), but its biostimulating properties in plants are less studied. Until now, only raw liquid extracts were tested for this purpose (Silva etal. 2019; FlórezFernández etal. 2021). Sargassum spp. contain a complex mixture of potentially bioactive components such as steroids, terpenoids, flavonoids, phytohormones and polysaccharides as alginate or fucoidan (Yende etal. 2014), with variable proportions depending on the species and season of harvest (Balboa etal. 2016). Thus, the physiological mechanisms triggered in crop plants are difficult to establish. Generally, experiments include whole extracts instead of individual components because of its synergistic action (Ertani etal. 2018; Drobek etal. 2019). Composition of these extracts is species-dependent, making it important to study the interspecific variability and applicability of such products. Biostimulant effects can vary among crop-plant species due to different response thresholds to the bioactive components. It is also known that high concentrations of algal extracts can lead to negative effects on plant growth (Colla etal. 2015). Hence, to analyze not only the response but also the composition of algal extracts, is an underpinning part for further development of biostimulant formulations. This topic has been less studied and will be discussed in this manuscript. Although information about extraction technologies for agricultural purposes is not often available as companies keep it as industrial secrets (Di Filippo-Herrera etal. 2019), it is well-known that conventional algal extractions include solvents such as hexane, methanol or ethanol, in combination with water. They are used within a variable range of physicochemical conditions, including acidic digestion (Hernández-Herrera etal. 2014; Castellanos-Barriga etal. 2017), alkaline extraction (Hernández-Herrera etal. 2016; Di Filippo-Herrera etal. 2019), with (Sharma etal. 2012) or without pressure and high temperature (Silva etal. 2019). These methods are not in accordance with green or circular economy goals: they are expensive and generate waste by-products which are difficult to manage because of their volatility, flammability and toxicity (Cheng etal. 2021). Pure aqueous extracts, with neutral pH, can be obtained by techniques such as ultrasound-assisted extraction, subcriticalwater extraction or pressing (Flórez-Fernández etal. 2021; Torres etal. 2021). To the best of our knowledge, extracts obtained by these alternative green extraction procedures were rarely studied for the development of biostimulant products. The multistage processing of S. muticum, within a biorefinery model as proposed by Flórez-Fernández etal. (2021) is an adequate technique for an integral and zero-waste valorization. In this sense, our study could be incorporated as part or extension of this model, focusing on the valorization of the solid residue from already pressed algae, through autohydrolysis extraction (Fig.1). Autohydrolysis is a subcritical water extraction technique, which occurs under high pressure and high temperature, causing a strong decrease in water polarity. It enables water to act as a non-polar solvent, without the problems of organic solvents (Cheng etal. 2021). Liquid extracts are difficult to handle, to store and to conserve. Drying is an effective method to obtain a better manageable product with less volume and longer shelf-life. Convective air drying exposes the algae to a constant moderately high temperature up to 75°C and can be completed after 100min (Chenlo etal. 2018). Freeze drying or lyophilization is a slow process of sublimation of the liquid extracts over multiple days, until only solid material remains. Spray-drying is a technique which relies on the atomization of a liquid sample into a hot gas current, obtaining in a few hours a fine powder as final product. Nevertheless, no literature is available about the consequences of drying on biostimulant potential. Thus, our aim was to study these drying techniques and to compare its effect on the physicochemical characteristics of green S. muticum extracts in order to elucidate the relationship with biostimulant features. Materials andmethods Raw materials Sargassum muticum sampling was performed by hand in summer at Praia da Mourisca (location: 4.224176°N,— 8.771932°W), NW of Spain, by Torres etal. (2021). The fresh seaweed was washed using tap water, and milled with an A320 chopper (Moulinex, Spain), until obtaining a particle size of 1.0cm. Hermetic plastic bags were used to store the wet samples at − 18°C in darkness until further use. Nasturtium officinale (No) was used as a model plant of the Brassicaceae family for the biostimulation assays. 922 Journal of Applied Phycology (2023) 35:921–933
1 3 Extraction process Algae were dried at room temperature (60g), then mixed with water at a liquid:solid ratio of 30:1 (w/w). A pressurized reactor equipped with a stirred vessel of 3.7 L (Parr Instruments series 4848, USA) was used to heat the mixture to final temperatures in the range of 120–220°C. After cooling, liquid and solid phases were separated through filtration. Before further analysis, liquid extracts were filtered through 0.45μm membranes. Dehydration processing Three drying treatments were tried for the soluble extracts obtained after hydrothermal treatment of S. muticum to determine their influence on the biostimulant potential. Conventional dehydration was performed on a convective air oven (P-Selecta, Barcelona, Spain) at 40°C. The corresponding dried samples were labelled as CAD. Freezedrying was conducted on a freeze-dryer (Alpha 2–5 LD plus, Martin Christ, Germany) operating at -55°C and 0.021mbar, being the dehydrated samples labelled as FD. Spray-drying was carried out using a spray-dryer (BÜCHI B-290, Switzerland) equipped with a standard cyclone (1.5mm nozzle). The operating conditions were optimized trying different settings following preliminary works reported in the recent literature (Baltrusch etal. 2022). The inlet temperature (Tin) was set at 120°C, with a 6mL min−1 feed solution flow rate and a 38 m3 h−1 (100%) air flow rate. The outlet temperature was around 50 ± 1°C. The dried samples were labelled as SD. For all dehydration treatments, the dehydration kinetics were monitored until constant weight. In all cases, dehydrated samples were placed into a desiccator containing silica gel for 24h to cool down at room temperature, homogenizing their moisture content. Then, the samples were stored in dark airtight plastic bags at room temperature until further measurements. All the experimental measurements were performed at least in triplicate. The dehydration kinetics were assessed as moisture ratio (MR), in terms of (Mt-Me)/(M0-Me), vs time. Me and M0 represent the equilibrium and initial moisture content (kg water kg−1 dry basis, d.b.), whereas Mt is the moisture content at any drying time (Moreira etal. 2013). The monitored drying kinetics were fitted by means of the two-parameters Page model (Page 1949), MR =e−ktn , with n and k being model parameters. Fig. 1 Flow diagram of the processed raw material. PL: Pressed liquor (raw); LSR: Liquid–solid ratio; T: temperature (°C); NT-AH: Non-treated autohydrolysis extract; FD: Freeze-dried; SD: Spray-dried; CAD: Convective air dried; t: time (min); Tin: Inlet temperature (°C); AFR: air flow rate (m3 h−1); SFR: feed solution flow rate (mL min−1) 923Journal of Applied Phycology (2023) 35:921–933
1 3 An estimation of the energy consumption for the three studied drying treatments was determined as the multiplication of the necessary drying time and power (López-Hortas etal. 2018). Liquid extracts physicochemical characterization Total phenolic content, antioxidant capacity, carbohydrates content, sulfates, proteins, phytohormones, fatty acids, yield, conductivity, and pH were measured for the liquid phase obtained by autohydrolysis, pH of the liquid samples was measured under constant stirring and at room temperature using a Crison GLP-21 (Spain). Conductivity was measured in a HI 8633 Hanna electroconductivity meter (Spain). Further measurements were performed as explained bellow. Mineral characterization Some of our elemental and mineral data of S. muticum are based on Flórez-Fernández etal. (2021). Macroelements were determined by atomic emission spectrophotometry (Na, K and P) and atomic absorption spectrophotometry (Ca, Mg) through a 220 Fast Sequential Spectrophotometer (Varian, USA). In order to perform these measurements, samples were previously subjected to a microwave assisted digestion (Marsxpress, CEM) of ash (0.3g) with H2O2 (1mL) and 8mL of HNO3. Operating conditions were set at 1600W for 15min, maintaining a static end point temperature of 200°C for 15min. An elemental analyzer (Thermo Flash EA 1112, Germany) was used to determine the C content. Operation conditions were set at 130mL min−1 He gas flow, 100mL min−1 gas flow reference, 250mL min−1 oxygen flow, at an oxidation furnace temperature of 900°C and a reduction furnace temperature of 680°C. A 2.0m, 6 × 5mm multiple analysis column (Cromlab, Spain) was used, with temperature set at 50°C and a chromatogram time of 420s. Aspartic acid (Sigma, USA) was used as reference. The Kjeldahl method was used to measure total N, results were converted to protein using the specific factor for brown seaweeds 5.38 ± 0.50 (Lourenço etal. 2002). Analysis ofphenolic compounds throughphloroglucinol quantification Phlorotannins (oligomers of phloroglucinol) were measured through a spectrophotometric method as performed by Koivikko etal. (2005). It is based on the Folin-Ciocalteu method (Singleton and Rossi 1965) with slight modifications. Firstly, a standard curve was set using 0.030 to 0.005g L−1 of phloroglucinol. Afterwards, samples were mixed with 1mL of Folin-Ciocalteu reagent, followed by 2mL of a 20% (w/v) sodium carbonate solution. The mixture was then stirred in a vortex left in the dark during 45min. Subsequently, absorbance was measured at λ = 730nm. All measurements were performed at least in triplicate. Trolox equivalent antioxidant capacity Antioxidant capacity of seaweed extracts was measured by the Trolox Equivalent Antioxidant Capacity (TEAC) assay (Re etal 1999). Liquid extract samples (10 μL) were placed in a test tube, followed by 1mL of ABTS solution (absorbance 0.7 ± 0.1) and then incubated for 6min at 30°C in a water bath. Then, absorbance was measured at 734nm and antioxidant capacity was calculated using a standard curve performed with Trolox (Sigma-Aldrich, Denmark). Measurements were performed at least in triplicate. Carbohydrates andother derived groups content High-Performance Liquid Chromatography (HPLC) was used to elucidate carbohydrate and other derived groups content. Oligosaccharide content was determined after dialysis of the studied extracts (Spectra/Por Float-A-Lyzer G2 Dialysis Membrane Tubing, MWCO 0.5kDa, SpectrumLabs, USA), followed by a post-hydrolysis, performed with 4% H2SO4 (v/v), at 121°C for 20min. All samples were finally filtered through a 0.45μm syringe filter, and then measured on a chromatograph. An Aminex HPX-87H column (300 × 7.8mm, BioRad, USA) was used, operating at 60°C, with a mobile phase of 0.003M H2SO4 (w/w) at 0.6mL min−1. The HPLC equipment had a refractive index detector. Soluble protein content Soluble protein content of the obtained extracts was measured through the Bradford assay (Bradford 1976) with 1 to 10μg mL−1 of bovine serum album (BSA, Sigma Aldrich, China) used for the standard curve. 0.5mL of each sample was mixed in a test tube with 0.5mL of Bradford Reagent (Sigma Aldrich, Germany). Afterwards, samples were incubated during 10min and finally measured at 595nm in a UV–vis spectrophotometer (Thermo Scientific Evolution 201, USA). Soluble sulphate content The gelatin-barium chloride method (Dodgson 1961) was used to determine the soluble sulphate content. GelatinBaCl2 reagent was prepared as it follows: 0.5g gelatin powder (Scharlau, Spain) was dissolved in 100mL hot water (70°C) and kept at 4°C overnight. Afterwards, 0.5g of BaCl2 (Sigma-Aldrich, USA) was added and stirred until a cloudy solution was obtained. After 2–3h, the reagent 924 Journal of Applied Phycology (2023) 35:921–933
1 3 was ready to use. 0.1mL of extract samples or blank were mixed with 1.9mL trichloroacetic acid solution (4%, v/v) and 0.5mL of the mentioned reagent. The suspensions were mixed and then incubated at room temperature for 15min. Absorbance was read at 500nm. Scanning electron microscope andparticle size distribution The morphology of the dried extracts was analyzed using a scanning electron microscopy (JEOL JSM6010LA, Japan) and the images were obtained at different magnifications. Samples were covered by a gold layer of 15nm. Average particle size was calculated. SEM micrographs were analyzed using ImageJ software to obtain average particle diameters. Around 200 measurements were performed manually for each of the analyzed samples. In order to obtain the particle size distribution (PSD), results were depicted as frequency distributions of different ranges of diameter and adjusted to a Lorentzian curve using Prism GraphPad 6.0. Nasturtium officinale seed germination andseedling growth bioassays Experiments were performed under invitro conditions. Germination and different growth parameters were assessed in order to evaluate the influence on the biostimulant effect of three drying techniques (FD: Freeze drying, SD: spraydrying, ACD: air convective drying) for the liquid extracts of S. muticum obtained by autohydrolysis. All assays were made by triplicate. Four dilutions were prepared for each of the obtained extracts (PL, SD, CAD, FD), at different concentrations: 5g L−1; 0.5g L−1; 0.05g L−1; 0.005g L−1 using distilled water as control. Various Petri-dishes with perlite (beneath) and filter paper (above) were prepared for each treatment. Filter paper was then moistened with 50mL of each extract. In each plate, 10 seeds were then sown and incubated at an angle of 70 to 80°. The germination percentage over the control was determined according to the European standard EN 16,086–1. The controlled environment growth cultures were incubated at 25 ± 5°C in the dark for 72h. Afterwards, different growth parameters were assessed: GD Germination degree (%). Seeds were considered germinated once the radicle protruded more than 2mm RL average root length (mm) SL average shoot length (mm) R/S root:shoot ratio RI Root Index (root development in relation to the control) MLV Munoo-Liisa Vitality Index was used to compare the product of the germination degree by the average root length in the samples, with the control. This index was calculated according to Eq.(1). where GDs = germination degree of each replica of a treatment, GDc = average germination degree of the control, RLs = average length of each replica of a treatment, and RLc = average length of the three replicates of the control treatment. Statistical analysis Statistical analysis and graphics were performed using the GraphPad Prism 6.0 program. Significant differences between means were calculated through one-way or twoway ANOVA tests, and with a p value < 0.05. Results Schematic procedure Figure1 shows an overview of the extraction and further treatments. Similar autohydrolysis treatments have been already performed by González-López etal. (2012). Different drying procedures were analyzed to assess its influence on the potential use of the S. muticum AH extract as biostimulant (Fig.2). It was observed that the drying kinetics for freeze drying treatment were 3.5 × longer than those obtained using conventional airdrying methodology. The lowest processing time was identified for spray-drying of S. muticum liquors (about 4h). Chemical characterization oftheliquid extracts Fundamental chemical characterization of the extracts and statistical analysis are summarized in Table1. Means with no letter in common are significantly different (one-way ANOVA; α = 0.05). Data shown in the first row (pressed raw liquor, PL) contain results reported in previous studies (Pérez-Larrán etal. 2020; Flórez-Fernández etal. 2021). Sulfate content of spray-dried (SD) extracts was similar to non-treated (NT) extracts, while freeze-drying (FD) and convective-air-drying (CAD) treatments showed slight but significant decrease in sulfate content. Proteins showed a (1) MLV (%)= GDs ×RLs GDc ×RLc × 100 925Journal of Applied Phycology (2023) 35:921–933
1 3 significant decrease in CAD treatment, compared to NT extract, but did not have huge variations. Phloroglucinol content and TEAC values varied among different treatments similarly. PL had the lowest values; AH extracts showed higher levels of phloroglucinol and antioxidant capacity. When comparing the different drying treatments, SD appeared to conserve better antioxidant properties and phloroglucinol content. FD and specially CAD procedure caused a significant decrease of TEAC values and phloroglucinol content when compared to NT. Macro-elements presented some variations among treatments. SD samples conserved significantly higher carbon, nitrogen and phosphorous content. CAD extracts showed significantly higher levels of sodium, magnesium and potassium. Oligosaccharides showed small differences between the different drying techniques but slight (and not significantly) lower values, when compared to the NT extract. SD extracts conserved better a high oligosaccharide content. When compared to the PL, AH extracts had significantly lower O-Glucose and O-Gal + Xyl + Man content, except for O-Fucose content, which is significantly higher. Electric conductivity (EC) and pH of the extracts used in the biostimulation assay were measured (Table2). pH was generally higher in CAD samples, and lowest in NT and FD extracts. A decrease in pH was observed at higher extract concentrations (except in case of CAD extracts). EC increased strongly with increasing concentration and showed some differences among drying techniques. EC in the 100% (5g L−1) extracts was very high in all cases. Lowest EC values were obtained in SD extracts and highest in FD samples. Fig. 2 Drying kinetics of tested extracts: (a) CAD: Convective air drying (squares); (b) FD: Freeze-drying (triangles) and (c) SD: Spray-drying (circles). Lines correspond to the Page model. Error bars smaller than symbols sizes Table 1 Mineral and bioactive composition of the extracts (%, w/w) depending on different treatments PL raw pressed liquor, AH autohydrolysis extraction, NT non treated, FD freeze-dried, SD spray-dried, CAD convective air dried. Means with at least one common letter are not significantly different * Data from Flórez-Fernández etal. (2021). ** Data fromPérez-Larrán etal. (2020) Parameters PL AH-NT AH-FD AH-SD AH-CAD Sulfate content (g (100g)−1) – 3.54 ± 0.03a 3.38 ± 0.02b 3.51 ± 0.04a 3.19 ± 0.05c Protein content (g (100g)−1) 4.63* 4.75 ± 0.09a 4.68 ± 0.10ab 4.69 ± 0.08ab 4.49 ± 0.07b Phloroglucinol content (g (100 g)−1) 2.47** 4.52 ± 0.06a 4.22 ± 0.05b 4.34 ± 0.07b 3.99 ± 0.08c TEAC (g Trolox (100g)−1) 0.75** 7.68 ± 0.05a 7.53 ± 0.07b 7.60 ± 0.02ab 7.36 ± 0.05c Macroelements (%) Carbon 18.90* 17.16 ± 0.32c 16.74 ± 0.06b 19.20 ± 0.08d 16.04 ± 0.20a N:P2O5:K2O ratio – 1.1: 1: 17 1: 1: 20.6 1.1: 1: 17.7 1: 1: 24 Nitrogen 0.86* 0.98 ± 0.07b 0.78 ± 0.03a 1.02 ± 0.02b 0.75 ± 0.03a Phosphorous – 0.39 ± 0.00b 0.33 ± 0.01a 0.39 ± 0.02b 0.32 ± 0.01a Potassium 11.65* 12.56 ± 0.11a 12.99 ± 0.41ab 13.30 ± 0.24b 14.59 ± 0.30c Calcium 0.57* 0.24 ± 0.05a 0.18 ± 0.01a 0.24 ± 0.07a 0.23 ± 0.05a Magnesium 1.37* 1.58 ± 0.02a 1.6 ± 0.02a 1.69 ± 0.06b 1.8 ± 0.04c Sodium 5.63* 5.66 ± 0.09a 5.55 ± 0.17a 5.75 ± 0.25a 6.57 ± 0.27b Oligosaccharides and associated groups (%) Total 33.15 ± 3.44a** 32.9 ± 3.7a 29.38 ± 2.08a 31.3 ± 2.7a 27.36 ± 2.10a O-Glucose 14.69 ± 0.61a** 2.12 ± 0.10b 2.01 ± 0.05b 2.06 ± 0.04b 1.78 ± 0.05b O-Fucose 4.29 ± 0.65a** 15.42 ± 0.21b 14.95 ± 0.10bc 15.33 ± 0.03b 14.31 ± 0.13c O-Gal + Xyl + Man 12.96 ± 1.49a** 7.31 ± 0.15b 6.56 ± 0.02c 7.01 ± 0.05c 6.04 ± 0.06bc Formic groups – 3.21 ± 0.20a 2.79 ± 0.12bc 2.99 ± 0.16ab 2.45 ± 0.11c Acetyl groups 1.21 ± 0.69a** 1.32 ± 0.05a 0.98 ± 0.06a 1.02 ± 0.03a 0.95 ± 0.04a 926 Journal of Applied Phycology (2023) 35:921–933
1 3 Morphological characterization ofdried liquid extracts Morphological characterization of the differently dried extracts is depicted in Fig.3. Figure3a–e shows the SEM results and Fig.3fthe particle size distribution of the spraydried (SD) extracts. SD extracts showed morphological differences within different operational settings. Particles in SD120 (Tin = 120 ºC, Tout = 50 ºC, feed rate = 20%) had an average diameter of 1.83 ± 0.62µm, which was significantly smaller compared to SD150 (Tin = 150 ºC, Tout = 80 ºC, feed rate = 40%), with an average diameter of 2.13 ± 0.66µm, when analyzed by unpaired t-test (p < 0.05). Freeze dried (FD) extracts showed a more laminar structure, when compared to the granular appearance of SD samples. However, all the dried samples showed primarily an amorphous state. Additionally, crystal formation was observed in CAD, with T = 40 ºC, and SD120, which had an outlet temperature (Tout) of 50 ºC. Biostimulant effects inNasturtium officinale The use of the different extracts had low influence on the germination rate (GR; Fig.4a), this occurred due to the already high GR in the control treatment. Thus, only a decrease in the GR could be measured. A significant decrease of GR was observed in NT extracts at a concentration of 5mg L−1. Munoo-Liisa vitality index showed greater variations (Fig.4b). This assay evaluates root length and germination jointly, in relation to the control. FD treatment achieved the best results at a concentration of 1%, with a significantly higher index value. Results showed slight increases in root and shoot growth when compared to the control in some cases, but differences were not statistically significant (Fig.4c–d). However, shoot length tends to increase in all cases as the extract concentration increased, without finding a growth inhibitory effect even applying the highest dose. The treatments that have not been subjected to high temperatures (NT and FD) showed a similar evolution, with similar lengths. On the other hand, the treatments with a thermal drying process (CAD and SD) have higher growth values with a 100% (5g L−1) extract concentration. Seeds germinated with the NT extracts showed a higher root:shoot ratio (Fig.4e). In all cases this parameter decreased when the extract concentration increased, due to the higher growth observed in the aerial part. Significant increases in root index values (root development in relation to the control; Fig.4f) were obtained, at the concentration of 0.1% (5mg L−1) in SD and 1% (50mg L−1) in case of FD extracts, with an increase in root length of 17 and 24%, respectively. NT liquor needed a much higher dose (100%, 5g L−1) to show significant differences over the control, with a 17% increase in root length. The highest dose (100%, 5g L−1) of FD extract produced a phytotoxic effect leading to a significant reduction in root index value. The drying process of the AH liquor seems to affect its efficiency as a biostimulant, being the SD extracts the most effective at various concentration, achieving the greatest increase in seed development using low doses of extract. Discussion Autohydrolysis andbiostimulant products The hydrothermal procedure of this study was performed following the optimized method of Flórez-Fernández etal. (2019) at 170°C. The mentioned study already analyzed Table 2 Electric conductivity (EC) and pH of the tested extracts, at different concentrations AH autohydrolysis extraction treatment, NT non treated, FD freeze-dryed, SD spray-dryed, CAD convective air dryed, σ standard deviations In all cases standard deviations were lower than 5% Concentration (%) AH-NT AH-FD AH-SD AH-CAD σ pH 0 6.1 6.1 6.1 6.1 0,00 0.1 6.96 6.64 6.76 6.84 0.13 1 6.38 6.25 6.29 6.35 0.06 10 5.63 5.82 5.87 6.35 0.31 100 5.2 5.6 5.77 6.63 0.60 EC (µS cm−1)0 0.05 0.05 0.05 0.05 0.00 0.1 12.64 22.57 6.96 10.62 6.68 1 51.67 50.6 44 55.33 4.72 10 501.7 480.7 446.7 500.7 25.72 100 4730 5943 4790 5353 566.98 927Journal of Applied Phycology (2023) 35:921–933
1 3 the biostimulant effect of the raw pressed liquor (sap), and solid residues of the autohydrolysis (AH) treatment were valorized by the incorporation to a seed coating mixture patented by Casquero Luelmo etal. (2021). Apart from this, no studies about the use of AH extracts for the development of biostimulant products were found in literature. Physicochemical properties andbiostimulant potential oftheextracts Until now, a deep analysis and valorization of the AH liquid extracts, from already pressed S. muticum solids, as potential plant biostimulants, has not been contemplated as in our study. In this paper we analyzed different liquor drying techniques and its impact on physicochemical properties, especially on the biostimulant potential of these extracts. Phloroglucinol and TEAC values were notably higher in AH-extracts compared to the pressed liquor, probably due to a disruption of the algae cells and higher solubility of the cellular membrane caused by the increment of temperature, with the consequent release of these bioactive components. Phloroglucinol content and TEAC values significantly decreased with longer and/or more intense stress exposure during the drying process, phenolic compounds could undergo polymerization or oxidation (Leandro etal. 2020). In this sense, SD was the best technique to conserve these characteristics. Seaweeds are rich in minerals. Due to their cell wall polysaccharides with negative surface charge, they easily retain cations or positively charged molecules from seawater (Alba and Kontogiorgos 2018). This, along with the natural presence of N, P and specially K, ensures a nutrient-rich composition which confers a potential value as fertilizer in agriculture (Silva etal. 2019), particularly in fruit crops which are very K demanding (Wang etal. 2022). High micronutrient content in seaweeds has also been related to an enhanced reactive oxygen scavenging response (i.e., oxidative stress tolerance) in plants, improving the response to environmental stress events (Bradáčová etal. 2016). The high content of arsenic in S. muticum has been pointed out by authors such Fig. 3 Morphological characterization of extracts. a–e): Scanning electron microscopy micrographs showing Sargassum muticum extracts dried through different techniques: a) spray-drying at Tin = 120°C and feed rate = 20% (SD120), b) spray-drying at Tin = 150°C and feed rate = 40% (SD150), c) oven-drying and d) freezedrying. e) Details of the crystals formed in spray-dried extract at Tin = 150°C (left) and ovendried extract (right). g) Particle size distribution of SD120 and SD150. Scale bars represent a) 5μm, b) 10μm, c) 50μm, d) 50μm, e) 10μm a) b) c) d) e) f) 928 Journal of Applied Phycology (2023) 35:921–933
1 3 as Devault etal. (2022). Sargassum muticum collected in our region (Galicia, NW of Spain) showed moderate to low levels of arsenic, ranging from 7.4 to 35.8ppm (Balboa etal. 2016). EU Fertilizer Regulation (EC) No 2019/1009 sets the limit of arsenic concentration in organic biostimulants at 40ppm. In our study, S. muticum extracts were used at maximum of 5g L−1. Even if we consider the complete transfer of the arsenic contained in the algae to the liquid extract, our Fig. 4 Growth evaluation of Nastrium officinale after addition of different liquid extracts of Sargassum muticum. NT: Non-treated liquor, FD: Freeze-dried, SD: Spray-dried, CAD: Convective air dried. Control: No extract. Means with no letter in common are significantly different (two-way ANOVA; α = 0.05; n = 3). Standard deviations are represented as error bars 929Journal of Applied Phycology (2023) 35:921–933