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      Cell‐Mediated Biointerfacial Phenolic Assembly for Probiotic Nano Encapsulation

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          Antioxidant Determinations by the Use of a Stable Free Radical

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            Epithelial-cell recognition of commensal bacteria and maintenance of immune homeostasis in the gut.

            Mucosal surfaces such as the intestinal tract are continuously exposed to both potential pathogens and beneficial commensal microorganisms. This creates a requirement for a homeostatic balance between tolerance and immunity that represents a unique regulatory challenge to the mucosal immune system. Recent findings suggest that intestinal epithelial cells, although once considered a simple physical barrier, are a crucial cell lineage for maintaining intestinal immune homeostasis. This Review discusses recent findings that identify a cardinal role for epithelial cells in sampling the intestinal microenvironment, discriminating pathogenic and commensal microorganisms and influencing the function of antigen-presenting cells and lymphocytes.
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              Microbial fuel cells: From fundamentals to applications. A review

              In the past 10–15 years, the microbial fuel cell (MFC) technology has captured the attention of the scientific community for the possibility of transforming organic waste directly into electricity through microbially catalyzed anodic, and microbial/enzymatic/abiotic cathodic electrochemical reactions. In this review, several aspects of the technology are considered. Firstly, a brief history of abiotic to biological fuel cells and subsequently, microbial fuel cells is presented. Secondly, the development of the concept of microbial fuel cell into a wider range of derivative technologies, called bioelectrochemical systems, is described introducing briefly microbial electrolysis cells, microbial desalination cells and microbial electrosynthesis cells. The focus is then shifted to electroactive biofilms and electron transfer mechanisms involved with solid electrodes. Carbonaceous and metallic anode materials are then introduced, followed by an explanation of the electro catalysis of the oxygen reduction reaction and its behavior in neutral media, from recent studies. Cathode catalysts based on carbonaceous, platinum-group metal and platinum-group-metal-free materials are presented, along with membrane materials with a view to future directions. Finally, microbial fuel cell practical implementation, through the utilization of energy output for practical applications, is described.
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                Author and article information

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                Journal
                Advanced Functional Materials
                Adv Funct Materials
                Wiley
                1616-301X
                1616-3028
                June 2022
                March 22 2022
                June 2022
                : 32
                : 26
                : 2200775
                Affiliations
                [1 ]School of Chemical Engineering University of New South Wales (UNSW) Sydney New South Wales 2052 Australia
                [2 ]Electron Microscope Unit Mark Wainwright Analytical Centre University of New South Wales (UNSW) Sydney New South Wales 2052 Australia
                Article
                10.1002/adfm.202200775
                430feb58-15c8-4e74-b633-308c634339c4
                © 2022

                http://creativecommons.org/licenses/by/4.0/

                http://doi.wiley.com/10.1002/tdm_license_1.1

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