DOI: 10.2174/0118715273459017260922073618 ISSN: 1871-5273

Neuroinflammation and Autophagy in Neurodegeneration: Cellular Mechanisms and Therapeutic Strategies

Anushka Verma, Swatantra Kumar Singh Kushwaha, Neelottama Kushwaha, Sayantan Dutta, Parul nigam

Neurodegenerative diseases, including Huntington’s disease, Parkinson’s disease, Alzheimer’s disease, and Amyotrophic Lateral Sclerosis (ALS), are characterized by progressive neuronal dysfunction and loss, often accompanied by toxic protein aggregation and chronic neuroinflammation. Increasing evidence indicates that dysregulated autophagy and persistent inflammatory responses are central drivers of disease onset and progression. Autophagy, a fundamental cellular degradation and recycling process, is essential for maintaining neuronal homeostasis by removing damaged organelles and misfolded proteins through mechanisms such as macroautophagy and mitophagy. However, key regulators of this pathway, including ULK1, Beclin-1, LC3, and p62/SQSTM1, are frequently impaired in neurodegenerative conditions, leading to the accumulation of pathogenic proteins such as tau, α-synuclein, and amyloid-β. Concurrently, aberrant activation of microglia and inflammasomes promotes the sustained release of pro-inflammatory cytokines, creating a neurotoxic environment that exacerbates neuronal injury. This review examines the molecular crosstalk between autophagy and neuroinflammation, with particular emphasis on disease-specific mechanisms, including LC3-associated endocytosis (LANDO) in Alzheimer’s disease, tau-mediated pathology, and dopaminergic neurodegeneration in Parkinson’s disease. Importantly, this review introduces a unifying conceptual framework in which neuroinflammation and autophagy are integrated as a dynamic, stagedependent immune–autophagy axis that governs neurodegenerative disease progression and therapeutic responsiveness. In addition, emerging multimodal therapeutic strategies targeting both autophagic flux and immune modulation are discussed, including mTOR inhibitors, mitophagy enhancers, GLP-1 receptor agonists, and nanomedicine-based delivery systems. Advances in three-dimensional organoids, induced Pluripotent Stem Cell (iPSC) models, and biomarker-driven clinical trials are further enhancing translational potential. In conclusion, understanding the interplay between autophagy and neuroinflammation provides critical insights into the pathophysiology of neurodegeneration and offers promising avenues for the development of targeted, disease-modifying therapies.