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Mammalian neuraminidases, also known as sialidases, are a family of four enzymes (NEU1, NEU2, NEU3, and NEU4) that catalyze the removal of terminal sialic acid residues from glycoproteins and glycolipids (Miyagi & Yamaguchi, 2012, Glycobiology). These enzymes are localized in distinct cellular compartments—lysosomes, cytosol, and plasma membranes—where they regulate critical processes such as cell signaling, immune response, and lysosomal degradation (UniProt: Q99519, Q9UQG6). NEU1 is the most widely expressed isoform and is essential for lysosomal function; its deficiency leads to the lysosomal storage disorder sialidosis (NIH: Genetic and Rare Diseases Information Center). NEU3 is primarily associated with the plasma membrane and is frequently upregulated in various cancers, where it modulates ganglioside-mediated signaling to promote tumor progression (PubMed: 22510516). In recent years, these enzymes have emerged as therapeutic targets for conditions including pulmonary fibrosis, atherosclerosis, and various malignancies (PubMed: 30107084). While clinical neuraminidase inhibitors like oseltamivir were developed for influenza, they demonstrate some cross-reactivity with mammalian isoforms, leading to research into more selective inhibitors for human disease applications (PubChem: CID 65028). This cross-reactivity has led to research into repurposing these drugs or developing new, highly selective inhibitors to treat chronic human conditions without affecting viral defense (PubMed: 25663131). Consequently, mammalian neuraminidases represent a versatile class of therapeutic targets with applications spanning oncology, immunology, and metabolic medicine.
Competitive inhibition of the sialidase enzyme, preventing the hydrolytic cleavage of terminal sialic acid residues from glycoproteins and glycolipids, thereby modulating cell surface signaling and lysosomal catabolism.
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