Lei Zixue, Ma Qizhao, Zhou Xuedong, Li Yuqing
State Key Laboratory of Oral Diseases, National Center for Stomatology, National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu, China.
Mol Oral Microbiol. 2025 Oct;40(5):177-190. doi: 10.1111/omi.12497. Epub 2025 Jun 9.
Multifunctional gingipains are trypsin-like enzymes secreted extracellularly by Porphyromonas gingivalis, which require delicate transit and processing to be activated in different mature forms. This review manages to reconstruct each processing step including the specific cleavage sites and relative proteins or helpers. Errors in any steps can lead to the accumulation of immature gingipains and weaken the virulence of P. gingivalis. Of special note, we emphasize the contribution of new studies to the refinement of the gingipain maturation process and factors that influence their pathogenicity. For example, it is proposed that glutamine cyclase, which is responsible for cyclizing exposed glutamine to pyroglutamic acid after the N-terminal signal peptide is removed, may be able to serve as a potential target for periodontitis treatment, as normal cyclization is key to maintaining the stability of gingipains. Further structural and functional unraveling of the type IX secretion system components, such as the identification of the structure of the PorV-associated shuttle complex, the determination of PorZ's role as the A-LPS deliverer, and the confirmation of the specific mechanism by which PorU promotes CTD removal and catalyzes the transpeptide reaction, has also contributed to a better understanding of gingipain processing. Meanwhile, as the successful activation of gingipains serves to fulfill their functions, this work also concentrates on gingipain pathogenicity, with a particular focus on how gingipains can induce or stimulate the development of systemic diseases, such as causing cardiovascular disorder through vascular damage or exacerbating inflammation in the brain in Alzheimer's disease after crossing the blood-brain barrier.
多功能牙龈蛋白酶是牙龈卟啉单胞菌分泌到细胞外的类胰蛋白酶,它们需要精细的转运和加工才能以不同的成熟形式被激活。本综述旨在重构每个加工步骤,包括特定的切割位点以及相关蛋白质或辅助因子。任何步骤中的错误都可能导致未成熟牙龈蛋白酶的积累,并削弱牙龈卟啉单胞菌的毒力。特别值得注意的是,我们强调了新研究对完善牙龈蛋白酶成熟过程以及影响其致病性的因素所做出的贡献。例如,有人提出,谷氨酰胺环化酶在N端信号肽被去除后负责将暴露的谷氨酰胺环化为焦谷氨酸,它可能成为牙周炎治疗的潜在靶点,因为正常的环化对于维持牙龈蛋白酶的稳定性至关重要。对IX型分泌系统组件的进一步结构和功能解析,如确定PorV相关穿梭复合物的结构、确定PorZ作为A-LPS传递体的作用以及确认PorU促进CTD去除并催化转肽反应的确切机制,也有助于更好地理解牙龈蛋白酶的加工过程。同时,由于牙龈蛋白酶的成功激活才能发挥其功能,这项工作还集中在牙龈蛋白酶的致病性上,特别关注牙龈蛋白酶如何诱导或刺激全身性疾病的发展,例如通过血管损伤导致心血管疾病,或在穿越血脑屏障后加剧阿尔茨海默病患者大脑中的炎症。