Del Mondo Angelo, Sansone Clementina, Brunet Christophe
Stazione zoologica Anton Dohrn, sede Molosiglio Marina Acton, via ammiraglio F. Acton, 55., 80133 Napoli, Italy.
Institute of Biomolecular Chemistry, CNR, via Campi Flegrei 34, Pozzuoli 80078, Na, Italy.
Comput Struct Biotechnol J. 2022 Apr 20;20:1901-1913. doi: 10.1016/j.csbj.2022.04.019. eCollection 2022.
Among the most relevant bioactive molecules family, phenolic compounds (PCs) are well known in higher plants, while their knowledge in microalgae is still scarce. Microalgae represent a novel and promising source of human health benefit compounds to be involved, for instance, in nutraceutical composition. This study aims to investigate the PCs biosynthetic pathway in the microalgal realm, exploring its potential variability over the microalgal biodiversity axis. A multistep analysis was carried out using a selection of core enzymes from the pathway described in land plants. This study explores their presence in ten groups of prokaryotic and eukaryotic microalgae.. Analyses were carried out taking into account a wide selection of algal protein homologs, functional annotation of conserved domains and motifs, and maximum-likelihood tree construction. Results showed that a conserved core of the pathway for PCs biosynthesis is shared horizontally in all microalgae. Conversely, the ability to synthesize some subclasses of phenolics may be restricted to only some microalgal groups (i.e., Chlorophyta) depending on featured enzymes, such as the flavanone naringenin and other related chalcone isomerase dependent compounds.
在最相关的生物活性分子家族中,酚类化合物(PCs)在高等植物中广为人知,而在微藻中的相关知识仍然匮乏。微藻是一种新型且有前景的对人类健康有益化合物的来源,例如可用于营养保健品成分。本研究旨在探究微藻领域中PCs的生物合成途径,探索其在微藻生物多样性轴上的潜在变异性。使用从陆地植物中描述的途径中选择的核心酶进行了多步骤分析。本研究探索了它们在十组原核和真核微藻中的存在情况。分析考虑了广泛选择的藻类蛋白质同源物、保守结构域和基序的功能注释以及最大似然树构建。结果表明,PCs生物合成途径的一个保守核心在所有微藻中水平共享。相反,根据特定酶(如黄酮柚皮素和其他相关查尔酮异构酶依赖性化合物)的情况,合成某些酚类亚类的能力可能仅限于某些微藻类群(即绿藻门)。