Literature DB >> 33198994

New insights into mechanisms of sunlight- and dark-mediated high-temperature accelerated diurnal production-degradation of fluorescent DOM in lake waters.

Xuemei Yang1, Jie Yuan2, Fu-Jun Yue1, Si-Liang Li1, Baoli Wang1, Mohammad Mohinuzzaman1, Yijun Liu1, Nicola Senesi3, Xinyu Lao1, Longlong Li1, Cong-Qiang Liu1, Rob M Ellam4, Davide Vione5, Khan M G Mostofa6.   

Abstract

The production of fluorescent dissolved organic matter (FDOM) by phytoplankton and its subsequent degradation, both of which occur constantly under diurnal-day time sunlight and by night time dark-microbial respiration processes in the upper layer of surface waters, influence markedly several biogeochemical processes and functions in aquatic environments and can be feasibly related to global warming (GW). In this work sunlight-mediated high-temperature was shown to accelerate the production of FDOM, but also its complete disappearance over a 24-h diurnal period in July at the highest air and water temperatures (respectively, 41.1 and 33.5 °C), differently from lower temperature months. Extracellular polymeric substances (EPS), an early-state DOM, were produced by phytoplankton in July in the early morning (6:00-9:00), then they were degraded into four FDOM components over midday (10:00-15:00), which was followed by simultaneous production and almost complete degradation of FDOM with reformation of EPS during the night (2:00-6:00). Such transformations occurred simultaneously with the fluctuating production of nutrients, dissolved organic carbon (DOC), dissolved organic nitrogen (DON) and the two isotopes (δ15N and δ18O) of NO3-. It was estimated that complete degradation of FDOM in July was associated with mineralization of approximately 15% of the initial DOC, which showed a nighttime minimum (00:00) in comparison to a maximum at 13:00. FDOM identified by excitation-emission matrix spectroscopy combined with parallel factor analysis consisted of EPS, autochthonous humic-like substances (AHLS) of C- and M-types, a combined form of C- and M-types of AHLS, protein-like substances (PLS), newly-released PLS, tryptophan-like substances, tyrosine-like substances (TYLS), a combined form of TYLS and phenylalanine-like substances (PALS), and their degradation products. Finally, stepwise degradation and production processes are synthesized in a pathway for FDOM components production and their subsequent transformation under different diurnal temperature conditions, which provided a broader paradigm for future impacts on GW-mediated DOM dynamics in lake water.
Copyright © 2020 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Closed lakes; Dark-mediated microbial processes; Fluorescent dissolved organic matter (FDOM); Sunlight-mediated processes; Transformation of FDOM; Water samples

Year:  2020        PMID: 33198994     DOI: 10.1016/j.scitotenv.2020.143377

Source DB:  PubMed          Journal:  Sci Total Environ        ISSN: 0048-9697            Impact factor:   7.963


  2 in total

1.  Long-term ice phenology records spanning up to 578 years for 78 lakes around the Northern Hemisphere.

Authors:  Sapna Sharma; Alessandro Filazzola; Thi Nguyen; M Arshad Imrit; Kevin Blagrave; Damien Bouffard; Julia Daly; Harley Feldman; Natalie Feldsine; Harrie-Jan Hendricks-Franssen; Nikolay Granin; Richard Hecock; Jan Henning L'Abée-Lund; Ed Hopkins; Neil Howk; Michael Iacono; Lesley B Knoll; Johanna Korhonen; Hilmar J Malmquist; Włodzimierz Marszelewski; Shin-Ichiro S Matsuzaki; Yuichi Miyabara; Kiyoshi Miyasaka; Alexander Mills; Lolita Olson; Theodore W Peters; David C Richardson; Dale M Robertson; Lars Rudstam; Danielle Wain; Holly Waterfield; Gesa A Weyhenmeyer; Brendan Wiltse; Huaxia Yao; Andry Zhdanov; John J Magnuson
Journal:  Sci Data       Date:  2022-06-16       Impact factor: 8.501

2.  Temperature Rise Increases the Bioavailability of Marine Synechococcus-Derived Dissolved Organic Matter.

Authors:  Jiajie Zhang; Jihua Liu; Daixi Liu; Xiao Chen; Quan Shi; Chen He; Gang Li
Journal:  Front Microbiol       Date:  2022-04-19       Impact factor: 6.064

  2 in total

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