Defining Planktonic Protist Functional Groups on Mechanisms for Energy and Nutrient Acquisition: Incorporation of Diverse Mixotrophic Strategies - PubMed
. 2016 Apr;167(2):106-20.
doi: 10.1016/j.protis.2016.01.003. Epub 2016 Feb 3.
Kevin J Flynn 2 , Urban Tillmann 3 , John A Raven 4 , David Caron 5 , Diane K Stoecker 6 , Fabrice Not 7 , Per J Hansen 8 , Gustaaf Hallegraeff 9 , Robert Sanders 10 , Susanne Wilken 11 , George McManus 12 , Mathew Johnson 13 , Paraskevi Pitta 14 , Selina Våge 15 , Terje Berge 8 , Albert Calbet 16 , Frede Thingstad 15 , Hae Jin Jeong 17 , JoAnn Burkholder 18 , Patricia M Glibert 6 , Edna Granéli 19 , Veronica Lundgren 20
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- PMID: 26927496
- DOI: 10.1016/j.protis.2016.01.003
Free article
Defining Planktonic Protist Functional Groups on Mechanisms for Energy and Nutrient Acquisition: Incorporation of Diverse Mixotrophic Strategies
Aditee Mitra et al. Protist. 2016 Apr.
Free article
Abstract
Arranging organisms into functional groups aids ecological research by grouping organisms (irrespective of phylogenetic origin) that interact with environmental factors in similar ways. Planktonic protists traditionally have been split between photoautotrophic "phytoplankton" and phagotrophic "microzooplankton". However, there is a growing recognition of the importance of mixotrophy in euphotic aquatic systems, where many protists often combine photoautotrophic and phagotrophic modes of nutrition. Such organisms do not align with the traditional dichotomy of phytoplankton and microzooplankton. To reflect this understanding, we propose a new functional grouping of planktonic protists in an eco-physiological context: (i) phagoheterotrophs lacking phototrophic capacity, (ii) photoautotrophs lacking phagotrophic capacity, (iii) constitutive mixotrophs (CMs) as phagotrophs with an inherent capacity for phototrophy, and (iv) non-constitutive mixotrophs (NCMs) that acquire their phototrophic capacity by ingesting specific (SNCM) or general non-specific (GNCM) prey. For the first time, we incorporate these functional groups within a foodweb structure and show, using model outputs, that there is scope for significant changes in trophic dynamics depending on the protist functional type description. Accordingly, to better reflect the role of mixotrophy, we recommend that as important tools for explanatory and predictive research, aquatic food-web and biogeochemical models need to redefine the protist groups within their frameworks.
Keywords: Plankton functional types (PFTs); microzooplankton.; mixotroph; phagotroph; phototroph; phytoplankton.
Copyright © 2016 The Authors. Published by Elsevier GmbH.. All rights reserved.
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