Electric Method for the Desulfation of Polysaccharides From Red Microalgae (Porphyridium cruentum) Cultures.

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Autori principali: Levy-Ontman, Oshrat, Bar-Gil, Amikam, Shemesh, Eli, Huliehel, Mahmoud, Amor, Yehudit, Landes, Naama, Sadeh, Yonatan, Tchernov, Dan
Natura: Artículo científico
Lingua:en
Pubblicazione: Biopolymers 2026
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author Levy-Ontman, Oshrat
Bar-Gil, Amikam
Shemesh, Eli
Huliehel, Mahmoud
Amor, Yehudit
Landes, Naama
Sadeh, Yonatan
Tchernov, Dan
author_facet Levy-Ontman, Oshrat
Bar-Gil, Amikam
Shemesh, Eli
Huliehel, Mahmoud
Amor, Yehudit
Landes, Naama
Sadeh, Yonatan
Tchernov, Dan
Levy-Ontman, Oshrat
Bar-Gil, Amikam
Shemesh, Eli
Huliehel, Mahmoud
Amor, Yehudit
Landes, Naama
Sadeh, Yonatan
Tchernov, Dan
collection PubMed - marine biology
contents Electric Method for the Desulfation of Polysaccharides From Red Microalgae (Porphyridium cruentum) Cultures. Levy-Ontman, Oshrat Bar-Gil, Amikam Shemesh, Eli Huliehel, Mahmoud Amor, Yehudit Landes, Naama Sadeh, Yonatan Tchernov, Dan Polysaccharides Porphyridium Sulfates Antiviral Agents Herpesvirus 1, Human Microalgae Electricity Viscosity Sulfated polysaccharides from the red microalgae Porphyridium cruentum demonstrate unique physicochemical properties and antiviral activity. Despite growing interest, it is yet unclear how the sulfates within these polysaccharides affect their rheological properties and whether they are required for the antiviral activity. We report a nondestructive method to deplete sulfates from these polysaccharides by directly exposing the growth medium to a moderate electric field (3.43 V/cm); a 5 min exposure yielded a polysaccharide fraction around the cathode, which we collected and compared to polysaccharides extracted via a traditional, ethanol-based method. Although the electric field did not affect the sugar composition of the polysaccharide and retained its gel-like properties, it substantially reduced its sulfate content (from 5.8% to 1.2%), viscosity (by fivefold), and stiffness (by eightfold) relative to the ethanol-separated fraction. Yet, the bioactivity of the sulfate-depleted polysaccharide against Herpes simplex virus 1 was only slightly reduced (~15%), suggesting that the sulfate groups do not significantly contribute to the antiviral potency of this polysaccharide. The reported electric-field separation methods is, therefore, a simple, straightforward, and nontoxic means for the direct recovery of desulfated polysaccharides from P. cruentum cultures, yielding a low-toxicity and highly stable gel-like material with enhanced amenability for antiviral applications.
format Artículo científico
id pubmed_41793409
institution PubMed
language en
publishDate 2026
publisher Biopolymers
record_format pubmed
spellingShingle Electric Method for the Desulfation of Polysaccharides From Red Microalgae (Porphyridium cruentum) Cultures.
Levy-Ontman, Oshrat
Bar-Gil, Amikam
Shemesh, Eli
Huliehel, Mahmoud
Amor, Yehudit
Landes, Naama
Sadeh, Yonatan
Tchernov, Dan
Polysaccharides
Porphyridium
Sulfates
Antiviral Agents
Herpesvirus 1, Human
Microalgae
Electricity
Viscosity
Electric Method for the Desulfation of Polysaccharides From Red Microalgae (Porphyridium cruentum) Cultures. Levy-Ontman, Oshrat Bar-Gil, Amikam Shemesh, Eli Huliehel, Mahmoud Amor, Yehudit Landes, Naama Sadeh, Yonatan Tchernov, Dan Polysaccharides Porphyridium Sulfates Antiviral Agents Herpesvirus 1, Human Microalgae Electricity Viscosity Sulfated polysaccharides from the red microalgae Porphyridium cruentum demonstrate unique physicochemical properties and antiviral activity. Despite growing interest, it is yet unclear how the sulfates within these polysaccharides affect their rheological properties and whether they are required for the antiviral activity. We report a nondestructive method to deplete sulfates from these polysaccharides by directly exposing the growth medium to a moderate electric field (3.43 V/cm); a 5 min exposure yielded a polysaccharide fraction around the cathode, which we collected and compared to polysaccharides extracted via a traditional, ethanol-based method. Although the electric field did not affect the sugar composition of the polysaccharide and retained its gel-like properties, it substantially reduced its sulfate content (from 5.8% to 1.2%), viscosity (by fivefold), and stiffness (by eightfold) relative to the ethanol-separated fraction. Yet, the bioactivity of the sulfate-depleted polysaccharide against Herpes simplex virus 1 was only slightly reduced (~15%), suggesting that the sulfate groups do not significantly contribute to the antiviral potency of this polysaccharide. The reported electric-field separation methods is, therefore, a simple, straightforward, and nontoxic means for the direct recovery of desulfated polysaccharides from P. cruentum cultures, yielding a low-toxicity and highly stable gel-like material with enhanced amenability for antiviral applications.
title Electric Method for the Desulfation of Polysaccharides From Red Microalgae (Porphyridium cruentum) Cultures.
topic Polysaccharides
Porphyridium
Sulfates
Antiviral Agents
Herpesvirus 1, Human
Microalgae
Electricity
Viscosity
url https://pubmed.ncbi.nlm.nih.gov/41793409/