Key Laboratory of Experimental Marine Biology, Center for Ocean Mega-Science, Institute of Oceanology, Chinese Academy of Sciences, Qingdao, 266071, P. R. China.
Laboratory for Marine Biology and Biotechnology, Pilot Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266237, P. R. China.
BMC Plant Biol. 2021 Feb 10;21(1):87. doi: 10.1186/s12870-021-02849-2.
The nitrogen-containing polysaccharide chitin is the second most abundant biopolymer on earth and is found in the cell walls of diatoms, where it serves as a scaffold for biosilica deposition. Diatom chitin is an important source of carbon and nitrogen in the marine environment, but surprisingly little is known about basic chitinase metabolism in diatoms.
Here, we identify and fully characterize 24 chitinase genes from the model centric diatom Thalassiosira pseudonana. We demonstrate that their expression is broadly upregulated under abiotic stresses, despite the fact that chitinase activity itself remains unchanged, and we discuss several explanations for this result. We also examine the potential transcriptional complexity of the intron-rich T. pseudonana chitinase genes and provide evidence for two separate tandem duplication events during their evolution.
Given the many applications of chitin and chitin derivatives in suture production, wound healing, drug delivery, and other processes, new insight into diatom chitin metabolism has both theoretical and practical value.
含氮多糖几丁质是地球上第二丰富的生物聚合物,存在于硅藻的细胞壁中,作为生物硅沉积的支架。硅藻几丁质是海洋环境中碳和氮的重要来源,但令人惊讶的是,硅藻几丁质酶代谢的基础知识却知之甚少。
在这里,我们从模式中心硅藻拟菱形藻中鉴定并全面描述了 24 种几丁质酶基因。我们证明,尽管几丁质酶活性本身保持不变,但它们的表达在非生物胁迫下广泛上调,我们讨论了这一结果的几种解释。我们还研究了富含内含子的拟菱形藻几丁质酶基因的潜在转录复杂性,并提供了它们在进化过程中发生两次独立串联重复事件的证据。
鉴于几丁质和几丁质衍生物在缝线生产、伤口愈合、药物输送和其他过程中的许多应用,对硅藻几丁质代谢的新认识具有理论和实际价值。