From algae to advancements: laminarin in biomedicine.
Sheersha PramanikAnshul SinghBassam M AbualsoudA DeepakPankaj NainwalArmen S SargsyanStefano BellucciPublished in: RSC advances (2024)
Laminarin, a complicated polysaccharide originating from brown algae, has emerged as a compelling candidate in the domain of biomedical research. This enigmatic molecule, composed of glucose units associated with both β-1,3 and β-1,6 glycosidic bonds, possesses an array of remarkable characteristics that render it auspicious for multifaceted biomedical applications. This review investigates the comprehensive potential of laminarin in the biomedical domain, emphasizing its remarkable biocompatibility, low cytotoxicity, and cell proliferation support. Laminarin's immunomodulatory attributes position it as an encouraging contender in immunotherapy and the development of vaccines. Moreover, its anti-inflammatory and antioxidant characteristics provide a promising avenue for combatting conditions associated with oxidative stress. In particular, laminarin excels as a drug delivery vehicle owing to its exceptional encapsulation capabilities emerging from its porous framework. Integrating pH and redox responsiveness in laminarin-based drug delivery systems is poised to redefine targeted therapies. Laminarin substantially contributes to tissue engineering by improving adhesion, migration of cells, and deposition of extracellular matrix. This augmentation magnifies the regenerative capability of tissue-engineered constructs, substantiated by the advancement of laminarin-based wound dressings and tissue scaffolds, marking considerable progress in the domain of wound healing and tissue regeneration. While laminarin exhibits substantial potential in biomedical applications, it remains in the initial phases of exploration. Comprehensive preclinical and clinical research is warranted to verify its effectiveness and safety across various applications. In essence, laminarin, a marine marvel, has the capability to remodel biomedical research, offering inventive solutions to complex difficulties.
Keyphrases
- tissue engineering
- oxidative stress
- extracellular matrix
- cell proliferation
- drug delivery
- stem cells
- anti inflammatory
- wound healing
- induced apoptosis
- cell therapy
- mesenchymal stem cells
- risk assessment
- metabolic syndrome
- climate change
- high throughput
- blood glucose
- cell cycle
- cancer therapy
- insulin resistance
- single cell
- biofilm formation
- highly efficient
- heat stress
- heat shock protein
- cell migration