Shortall Kim, Djeghader Ahmed, Magner Edmond, Soulimane Tewfik
Department of Chemical Sciences, Bernal Institute, University of Limerick, Limerick, Ireland.
Front Mol Biosci. 2021 May 14;8:659550. doi: 10.3389/fmolb.2021.659550. eCollection 2021.
Aldehyde dehydrogenases engage in many cellular functions, however their dysfunction resulting in accumulation of their substrates can be cytotoxic. ALDHs are responsible for the NAD(P)-dependent oxidation of aldehydes to carboxylic acids, participating in detoxification, biosynthesis, antioxidant and regulatory functions. Severe diseases, including alcohol intolerance, cancer, cardiovascular and neurological diseases, were linked to dysfunctional ALDH enzymes, relating back to key enzyme structure. An in-depth understanding of the ALDH structure-function relationship and mechanism of action is key to the understanding of associated diseases. Principal structural features 1) cofactor binding domain, 2) active site and 3) oligomerization mechanism proved critical in maintaining ALDH normal activity. Emerging research based on the combination of structural, functional and biophysical studies of bacterial and eukaryotic ALDHs contributed to the appreciation of diversity within the superfamily. Herewith, we discuss these studies and provide our interpretation for a global understanding of ALDH structure and its purpose-including correct function and role in disease. Our analysis provides a synopsis of a common structure-function relationship to bridge the gap between the highly studied human ALDHs and lesser so prokaryotic models.
醛脱氢酶参与多种细胞功能,然而其功能障碍导致底物积累可能具有细胞毒性。醛脱氢酶负责将醛进行NAD(P)依赖的氧化反应生成羧酸,参与解毒、生物合成、抗氧化和调节功能。包括酒精不耐受、癌症、心血管疾病和神经疾病在内的严重疾病都与醛脱氢酶功能异常有关,这可追溯到关键酶结构。深入了解醛脱氢酶的结构-功能关系及作用机制是理解相关疾病的关键。主要结构特征1)辅因子结合域、2)活性位点和3)寡聚化机制被证明对维持醛脱氢酶的正常活性至关重要。基于细菌和真核生物醛脱氢酶的结构、功能和生物物理研究相结合的新兴研究有助于认识该超家族内的多样性。在此,我们讨论这些研究,并给出我们的解读,以便全面了解醛脱氢酶的结构及其作用——包括其正确功能以及在疾病中的作用。我们的分析提供了一个常见结构-功能关系的概要,以弥合对研究较多的人类醛脱氢酶和研究较少的原核生物模型之间的差距。