← Back to all signals
RESEARCH PAPER ANALYSIS

Hyaluronic acid: emerging roles and biomaterial innovations in Alzheimer's and Parkinson's disease therapy.

This review compiles preclinical evidence that hyaluronic acid (HA)–based biomaterials modulate neuroinflammation, autophagic flux, α‑synuclein propagation, and ECM remodeling while enabling targeted drug/gene delivery and scaffolded cell transplantation in Alzheimer's and Parkinson's disease.

PMID41948730
JournalFrontiers in pharmacology
Publication Date2026-01-01
Ingested2026-04-28 08:58 PM
EXECUTIVE SUMMARY

What the AI sees

This review compiles preclinical evidence that hyaluronic acid (HA)–based biomaterials modulate neuroinflammation, autophagic flux, α‑synuclein propagation, and ECM remodeling while enabling targeted drug/gene delivery and scaffolded cell transplantation in Alzheimer's and Parkinson's disease.

WHY IT MATTERS

Research significance

Highlights HA as a multimodal, translationally relevant platform for neuroprotection and targeted delivery in PD (autophagy/α‑synuclein modulation, mitochondrial/dopamine targeting, and cell-supporting hydrogels) but underscores formulation variability and scarce clinical validation, pointing to…

ABSTRACT

Source abstract

Hyaluronic acid (HA) is a key component of the extracellular matrix (ECM). Owing to its anti-inflammatory properties, biocompatibility and ability to contribute to ECM remodeling, HA is considered a promising therapeutic candidate for neurodegenerative diseases. This review summarizes the application of HA to treat Alzheimer's disease (AD) and Parkinson's disease (PD) and outlines the current understanding of the mechanism of action and strategies for HA-based biomaterial modification. For AD, HA is involved in several mechanisms including stabilizing the perineuronal net, reducing the toxic effects of Aβ and hyperphosphorylated tau, and modulating neuroinflammation through CD44/RHAMM signaling pathways. HA-based nanoparticles and hydrogels enhance drug delivery across the blood-brain barrier, facilitate Aβ clearance, and enable sustained, controlled release of therapeutic agents. In PD, HA regulates autophagic flux, inhibits α-synuclein propagation, and remodels the ECM to protect dopaminergic neurons. Modifications such as HA hydrogels with neurotrophic factors improve cell transplantation outcomes, while conjugates enhance mitochondrial targeting and dopamine delivery. While numerous preclinical studies have shown promise, significant challenges remain, including the high variability of HA formulations, limited blood-brain barrier penetration efficiency, and a paucity of well-designed clinical trials to validate preliminary findings. Future directions include standardizing laboratory protocols, developing hybrid systems integrating vascular endothelial growth factor and gene therapy, and adopting a patient-specific approach that leverages HA's multi-targeted effects on the nervous system.

SUPPORTING PAPER SET

32 more papers to review

Ranked by current scoring engine
1 The cGAS-STING-Glymphatic-gut Axis in Parkinson's disease: A proposed self-amplifying triad of Neuroinflammation and therapeutic opportunity. International immunopharmacology 91.0 2 Immunosenescence and Inflammaging as Drivers of Neurodegeneration: Cellular Mechanisms, Neuroimmune Crosstalk, and Therapeutic Implications. Cells 91.0 3 Flavonoids improve neurotransmitters for Parkinson's treatment: mechanism and therapeutic potential. Frontiers in pharmacology 88.0 4 Alpha-Lipoic Acid and Biotin in Neurodegenerative Diseases: Convergent Mechanistic Insights from Preclinical Models to Clinical Perspectives. Neurology international 78.0 5 The Gut Microbiota in Parkinson's Disease: Mechanistic Insights into Microbial-Host Interactions. Microorganisms 85.0 6 Linking inflammation, metabolic dysfunction, and neurodegeneration: a comprehensive review of TLR2 pathways in type 2 diabetes. Frontiers in clinical diabetes and healthcare 80.0 7 Neuroprotective effects of GLP-2 and a GLP-2/GIP dual receptor agonist in an MPTP-induced mouse model of Parkinson's disease. Peptides 86.0 8 TNF alpha unmasks enteric malate aspartate shuttle dysfunction bridging Parkinson disease and intestinal inflammation. Nature communications 91.5 9 Lipid Metabolism and Neurodegeneration: Mechanistic Insights and Therapeutic Targets. Ageing research reviews 82.0 10 Shared functional microbiome signatures in Parkinson's disease and constipation predominate irritable bowel syndrome despite taxonomic divergence. Brain, behavior, & immunity - health 80.0 11 Benzimidazole as a Versatile Scaffold for Developing Neurotherapeutics Against Neurodegenerative Diseases. ChemMedChem 74.0 12 Biomimicking neuromelanin reverses the gait deficits and dopaminergic neuronal loss in the Parkinson's disease. Colloids and surfaces. B, Biointerfaces 86.0 13 Neuroprotective roles of klotho: Molecular pathways and therapeutic implications for cognitive health in neurological and psychiatric diseases. Experimental physiology 84.0 14 Flavonoid Rutin Reduces Intestinal Inflammation in an Experimental Model of Parkinson's Disease. Neurotoxicity research 70.0 15 Nanostructured Lipid Carriers Enhance Brain Delivery and Antioxidant Efficacy of a Small-Molecule MAO B Inhibitor for Neurodegenerative Disease Therapy. Molecular pharmaceutics 78.0 16 Pathophysiological Role of the Gut Brain Axis in Parkinson's Disease: From Microbial Metabolites and Intestinal Permeability to Central Neuroinflammation. Current neurovascular research 86.0 17 Parkinson's Disease: From Metabolism to Genetics-A Comprehensive Review. Current issues in molecular biology 86.0 18 Navigating the cholesterol maze: Key insights on use of statins in neurodegenerative disorders. Neuroprotection (Chichester, England) 76.0 19 Integrative network pharmacology delineates dual GPCR and non-GPCR mechanisms of blended and individual Taikong Blue lavender and Pingyin rose essential oils in neurodegenerative and psychiatric disorders. Computers in biology and medicine 65.0 20 Models of neuroprotection in Parkinson's disease: Exploring cellular, molecular, and microenvironmental targets. Experimental neurology 78.0 21 Molecular mechanisms underlying Parkinson's disease and role of phytochemicals, α-synuclein, sirtuins, and incretin mimetics in potential therapy. Frontiers in pharmacology 75.0 22 Lipid droplets in neurodegenerative diseases: pathological drivers and therapeutic vulnerabilities. Cell death discovery 82.0 23 Brain-gut-microbiota axis: a review on the bidirectional regulatory mechanisms between gut microbiota and brain and their disease interactions. Frontiers in microbiology 74.0 24 Long non-coding RNAs in neurodegenerative diseases - Molecular mechanisms, liquid biopsy biomarkers, and therapeutic targets: A review. Biomolecules & biomedicine 84.0 25 Neurosyphilis and Parkinsonism: Overlapping Pathophysiology and Emerging Therapeutic Insights. Current neurovascular research 76.0 26 Molecular biochemistry of soluble epoxide hydrolase in lipid mediator pathways and neuroinflammatory responses. The Journal of steroid biochemistry and molecular biology 82.0 27 Multifaceted role of CNPY2 beyond ER stress: Disease implications and therapeutic potential. Cell stress 83.3 28 Neuroprotective Role of Exercise-based Physiotherapy Combined with Pharmacological Agents in Parkinson's Disease. Central nervous system agents in medicinal chemistry 64.0 29 Distinct metabolomic and proteomic signatures in Parkinson's disease patients with REM sleep behavior disorder. Signal transduction and targeted therapy 84.0 30 HMGB1-mediated neuroinflammation: molecular mechanisms and emerging therapeutic approaches. Inflammopharmacology 78.0 31 Beyond acid-base dyshomeostasis: Dynamic instability of neuronal lysosomal pH as a pathogenic mechanism and therapeutic target in neurological diseases. Biochemical pharmacology 88.0 32 Vitamins as Modulators of Neurodegenerative Disease Pathways: Mechanisms and Therapeutic Perspectives. Nutrients 74.0
Neurocompute Parkinson’s Narrative Velocity Infographic
NEUROCOMPUTE VISUAL SYSTEM

Open the Narrative Velocity Map

Explore the full Parkinson’s research intelligence diagram.

Expand Intelligence View →
Full Neurocompute Infographic