High Mobility Group Box 1 (HMGB1): Molecular Signaling and Potential Therapeutic Strategies

HMGB1 可药性 生物 表观遗传学 组蛋白 神经退行性变 神经科学 信号转导 自噬 疾病 染色质 调节器 计算生物学 生物信息学 细胞生物学 炎症 医学 免疫学 遗传学 细胞凋亡 DNA 病理 基因
作者
Sayantap Datta,Mohammad Atiqur Rahman,Saisudha Koka,Krishna M. Boini
出处
期刊:Cells [Multidisciplinary Digital Publishing Institute]
卷期号:13 (23): 1946-1946 被引量:28
标识
DOI:10.3390/cells13231946
摘要

High Mobility Group Box 1 (HMGB1) is a highly conserved non-histone chromatin-associated protein across species, primarily recognized for its regulatory impact on vital cellular processes, like autophagy, cell survival, and apoptosis. HMGB1 exhibits dual functionality based on its localization: both as a non-histone protein in the nucleus and as an inducer of inflammatory cytokines upon extracellular release. Pathophysiological insights reveal that HMGB1 plays a significant role in the onset and progression of a vast array of diseases, viz., atherosclerosis, kidney damage, cancer, and neurodegeneration. However, a clear mechanistic understanding of HMGB1 release, translocation, and associated signaling cascades in mediating such physiological dysfunctions remains obscure. This review presents a detailed outline of HMGB1 structure-function relationship and its regulatory role in disease onset and progression from a signaling perspective. This review also presents an insight into the status of HMGB1 druggability, potential limitations in understanding HMGB1 pathophysiology, and future perspective of studies that can be undertaken to address the existing scientific gap. Based on existing paradigm of various studies, HMGB1 is a critical regulator of inflammatory cascades and drives the onset and progression of a broad spectrum of dysfunctions. Studies focusing on HMGB1 druggability have enabled the development of biologics with potential clinical benefits. However, deeper understanding of post-translational modifications, redox states, translocation mechanisms, and mitochondrial interactions can potentially enable the development of better courses of therapy against HMGB1-mediated physiological dysfunctions.
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