Caspases: structural and molecular mechanisms and functions in cell death, innate immunity, and disease

半胱氨酸蛋白酶 上睑下垂 先天免疫系统 细胞生物学 程序性细胞死亡 生物 溶解循环 内源性凋亡 NLRP1 炎症体 细胞凋亡 免疫系统 免疫学 炎症 生物化学 病毒
作者
Eswar Kumar Nadendla,Rebecca E. Tweedell,Gary Kasof,Thirumala‐Devi Kanneganti
出处
期刊:Cell discovery [Springer Nature]
卷期号:11 (1): 42-42 被引量:49
标识
DOI:10.1038/s41421-025-00791-3
摘要

Caspases are critical regulators of cell death, development, innate immunity, host defense, and disease. Upon detection of pathogens, damage-associated molecular patterns, cytokines, or other homeostatic disruptions, innate immune sensors, such as NLRs, activate caspases to initiate distinct regulated cell death pathways, including non-lytic (apoptosis) and innate immune lytic (pyroptosis and PANoptosis) pathways. These cell death pathways are driven by specific caspases and distinguished by their unique molecular mechanisms, supramolecular complexes, and enzymatic properties. Traditionally, caspases are classified as either apoptotic (caspase-2, -3, -6, -7, -8, -9, and -10) or inflammatory (caspase-1, -4, -5, and -11). However, extensive data from the past decades have shown that apoptotic caspases can also drive lytic inflammatory cell death downstream of innate immune sensing and inflammatory responses, such as in the case of caspase-3, -6, -7, and -8. Therefore, more inclusive classification systems based on function, substrate specificity, or the presence of pro-domains have been proposed to better reflect the multifaceted roles of caspases. In this review, we categorize caspases into CARD-, DED-, and short/no pro-domain-containing groups and examine their critical functions in innate immunity and cell death, along with their structural and molecular mechanisms, including active site/exosite properties and substrates. Additionally, we highlight the emerging roles of caspases in cellular homeostasis and therapeutic targeting. Given the clinical relevance of caspases across multiple diseases, improved understanding of these proteins and their structure-function relationships is critical for developing effective treatment strategies.
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