Kim Soyeon, Kim Ju-Hyoung, Lim Jae-Hyun, Jeong Jin-Hyun, Heo Jang-Mu, Kim Il-Nam
Department of Marine Science, Incheon National University, Incheon 22012, Korea.
Faculty of Marine Applied Biosciences, Kunsan National University, Gunsan 54150, Korea.
Microorganisms. 2020 Jul 24;8(8):1115. doi: 10.3390/microorganisms8081115.
Marian Cove is experiencing some of the most rapid environmental changes in the Antarctic region; however, little is known about the response of bacterial communities to these changes. The main purpose of this study was to investigate the spatial variation of physical‒biogeochemical‒bacterial community features in the Marian Cove surface waters and the environmental parameters governing the spatial variation in the bacterial community composition during the summer of 2018. The Marian Cove surface waters are largely composed of two different characteristics of water masses: relatively low-temperature, -salinity, and -nutrient surface glacier water (named SGW) and relatively high-temperature, -salinity, and -nutrient surface Maxwell Bay water (named SMBW). The SGW bacterial communities were dominated by unclassified Cryomorphaceae, Sedimenticola, and Salibacter genera, while the SMBW bacterial communities were dominated by Sulfitobacter, Arcobacter, and Odoribacter genera. Spatial variations in bacterial community composition were mainly attributed to physical and biogeochemical characteristics, suggesting that the bacterial community composition of the Marian Cove surface waters is mainly determined by environmental characteristics. These findings provide a foundation to improve the understanding of bacterial community variations in response to a rapidly changing Marian Cove in the Antarctic.
玛丽安湾正在经历南极地区一些最为迅速的环境变化;然而,关于细菌群落对这些变化的响应却知之甚少。本研究的主要目的是调查2018年夏季玛丽安湾表层水体中物理-生物地球化学-细菌群落特征的空间变化,以及控制细菌群落组成空间变化的环境参数。玛丽安湾表层水体主要由两种不同特征的水体组成:相对低温、低盐度和低营养的表层冰川水(称为SGW)以及相对高温、高盐度和高营养的表层麦克斯韦湾水(称为SMBW)。SGW细菌群落以未分类的嗜冷杆菌科、沉积物杆菌属和盐杆菌属为主,而SMBW细菌群落以硫杆菌属、弓形杆菌属和臭杆菌属为主。细菌群落组成的空间变化主要归因于物理和生物地球化学特征,这表明玛丽安湾表层水体的细菌群落组成主要由环境特征决定。这些发现为增进对南极玛丽安湾快速变化所引起的细菌群落变化的理解奠定了基础。