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      (S)-Thienyl and (R)-Pirydyl phosphonate Derivatives Synthesized by Stereoselective Resolution of Their Racemic Mixtures With Rhodotorula mucilaginosa (DSM 70403) - Scaling Approaches

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          Abstract

          Rhodotorula mucilaginosa was successfully applied as a biocatalyst for the enantioselective resolution of the racemic mixtures of heteroatom phosphonates derivatives, resulting in receiving the following enantiomers: (S)-1-amino-1(2-thienyl)methylphosphonic acid (Product 1) and (R)-1-amino-1-(3′pirydyl) methylphosphonic acid (Product 2). Biological synthesis of both products is reported for the first time. Pure (S)-1-amino-1-(2-thienyl)methylphosphonic acid (Product 1) was isolated with a conversion degree of 50% after 24 h of biotransformation was conducted on a laboratory scale under moderate conditions (1.55 mM of substrate 1, 100 mL of distilled water, 135 rpm, 25°C; Method A). The scale was enlarged to semi-preparative one, using a simplified flow-reactor (Method C; 3.10 mM of substrate 1) and immobilized biocatalyst. The product was isolated with a conversion degree of 50% just after 4 h of biotransformation. Amino-1-(3′pirydyl)methylphosphonic acid (Substrate 2) was converted according to novel procedure, by the immobilized biocatalyst - Rhodotorula mucilaginosa. The process was carried out under moderate conditions (3.19 mM – substrate 2 solution; Method C1) with the application of a simplified flow reactor system, packed with the yeasts biomass entrapped in 4% agar-agar solution. Pure (R)-amino-1-(3′pirydyl)methylphosphonic (50% of conversion degree) was received within only 48 h.

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          Consecutive multicomponent reactions for the synthesis of complex molecules

          Consecutive multicomponent reactions (MCRs) combine two or more MCRs to achieve high synthetic efficiency, product structural diversity, and molecular complexity. Multicomponent reactions (MCRs) involving a minimum of three reactants or reaction centers are conducted in one pot and with a single operational step. This synthetic method has a good pot, atom and step economy in the preparation of diverse and complex molecular scaffolds. Consecutive MCRs, also known as sequential or multiple MCRs, by combining two or more MCRs, exhibit even higher synthetic efficiency, product structural diversity, and molecular complexity. This review article highlights the Ugi, Groebke–Blackburn–Bienaymé, Biginelli, Huisgen, Petasis, Gewald, and Asinger reaction-initiated consecutive MCRs.
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            Baker's yeast mediated transformations in organic chemistry

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              Synthetic methods for azaheterocyclic phosphonates and their biological activity.

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                Author and article information

                Contributors
                Journal
                Front Chem
                Front Chem
                Front. Chem.
                Frontiers in Chemistry
                Frontiers Media S.A.
                2296-2646
                11 November 2020
                2020
                : 8
                : 589720
                Affiliations
                [1] 1Laboratory of Biotechnology, Department of Biochemistry, Molecular Biology and Biotechnology, Faculty of Chemistry, Wrocław University of Science and Technology , Wrocław, Poland
                [2] 2Department of Physical and Quantum Chemistry, Faculty of Chemistry, Wrocław University of Science and Technology , Wrocław, Poland
                Author notes

                Edited by: Konstantinos D. Demadis, University of Crete, Greece

                Reviewed by: Francisc Peter, Politehnica University of Timişoara, Romania; Hitendra M. Patel, Sardar Patel University, India

                *Correspondence: Małgorzata Brzezińska-Rodak malgorzata.brzezinska-rodak@ 123456pwr.edu.pl

                This article was submitted to Organic Chemistry, a section of the journal Frontiers in Chemistry

                Article
                10.3389/fchem.2020.589720
                7686439
                c0b1f19d-6e37-48d1-8ed9-014ad262b781
                Copyright © 2020 Lubiak-Kozłowska, Brzezińska-Rodak, Klimek-Ochab, Olszewski, Serafin-Lewańczuk and Żymańczyk-Duda.

                This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

                History
                : 03 August 2020
                : 08 October 2020
                Page count
                Figures: 7, Tables: 3, Equations: 0, References: 33, Pages: 10, Words: 6300
                Funding
                Funded by: Politechnika Wroclawska 10.13039/501100005982
                Categories
                Chemistry
                Original Research

                rhodotorula mucilaginosa,biocatalysis,heterocyclic phosphonates,stereoselectivity,pure enantiomers

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