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      The Pictet-Spengler Reaction Updates Its Habits

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          Abstract

          The Pictet-Spengler reaction (P-S) is one of the most direct, efficient, and variable synthetic method for the construction of privileged pharmacophores such as tetrahydro-isoquinolines (THIQs), tetrahydro-β-carbolines (THBCs), and polyheterocyclic frameworks. In the lustro (five-year period) following its centenary birthday, the P-S reaction did not exit the stage but it came up again on limelight with new features. This review focuses on the interesting results achieved in this period (2011–2015), analyzing the versatility of this reaction. Classic P-S was reported in the total synthesis of complex alkaloids, in combination with chiral catalysts as well as for the generation of libraries of compounds in medicinal chemistry. The P-S has been used also in tandem reactions, with the sequences including ring closing metathesis, isomerization, Michael addition, and Gold- or Brønsted acid-catalyzed N-acyliminium cyclization. Moreover, the combination of P-S reaction with Ugi multicomponent reaction has been exploited for the construction of highly complex polycyclic architectures in few steps and high yields. The P-S reaction has also been successfully employed in solid-phase synthesis, affording products with different structures, including peptidomimetics, synthetic heterocycles, and natural compounds. Finally, the enzymatic version of P-S has been reported for biosynthesis, biotransformations, and bioconjugations.

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          Most cited references294

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          Cascade reactions in total synthesis.

          The design and implementation of cascade reactions is a challenging facet of organic chemistry, yet one that can impart striking novelty, elegance, and efficiency to synthetic strategies. The application of cascade reactions to natural products synthesis represents a particularly demanding task, but the results can be both stunning and instructive. This Review highlights selected examples of cascade reactions in total synthesis, with particular emphasis on recent applications therein. The examples discussed herein illustrate the power of these processes in the construction of complex molecules and underscore their future potential in chemical synthesis.
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            Asymmetric organocatalytic domino reactions.

            The current status of organic synthesis is hampered by costly protecting-group strategies and lengthy purification procedures after each synthetic step. To circumvent these problems, the synthetic potential of multicomponent domino reactions has been utilized for the efficient and stereoselective construction of complex molecules from simple precursors in a single process. In particular, domino reactions mediated by organocatalysts are in a way biomimetic, as this principle is used very efficiently in the biosynthesis of complex natural products starting from simple precursors. In this Minireview, we discuss the current development of this fast-growing field.
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              Gold catalysis in total synthesis--an update.

              In this critical review, the strongly increasing amount of new applications of gold catalysis in total synthesis is summarised and, for the new developed methods, the mode of activation of the substrate by the gold catalyst is discussed (47 references).
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                Author and article information

                Contributors
                Role: Academic Editor
                Journal
                Molecules
                Molecules
                molecules
                Molecules
                MDPI
                1420-3049
                19 January 2020
                January 2020
                : 25
                : 2
                : 414
                Affiliations
                [1 ]Department of Chemistry and Technology of Drugs, “Department of Excellence 2018−2022”, Sapienza University of Rome, Piazzale Aldo Moro 5, 00185 Rome, Italy; laura.mangiardi@ 123456uniroma1.it (L.M.); giugiu44@ 123456gmail.com (G.D.M.); deborah.quaglio@ 123456uniroma1.it (D.Q.); silvia.balducci@ 123456uniroma1.it (S.B.); antonia.iazzetti@ 123456uniroma1.it (A.I.); roberta.franzini@ 123456uniroma1.it (R.F.); bruno.botta@ 123456uniroma1.it (B.B.)
                [2 ]Center for Life Nano Science@Sapienza, Istituto Italiano di Tecnologia, Viale Regina Elena 291, 00161 Rome, Italy; francesca.ghirga@ 123456iit.it
                [3 ]Department of Chemistry and Applied Biosciences, ETH-Zürich, Vladimir-Prelog Weg 4, 8093 Zürich, Switzerland
                Author notes
                Author information
                https://orcid.org/0000-0001-7036-6620
                https://orcid.org/0000-0002-9937-4365
                https://orcid.org/0000-0002-3352-9811
                https://orcid.org/0000-0002-7792-774X
                https://orcid.org/0000-0001-8707-4333
                Article
                molecules-25-00414
                10.3390/molecules25020414
                7024544
                31963860
                5a739b0d-c2b8-428e-8be5-75df862f7ebb
                © 2020 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 13 December 2019
                : 09 January 2020
                Categories
                Review

                pictet-spengler,tetrahydroisoquinoline,thiq,tetrahydro-β-carboline,thbc,alkaloid,total synthesis,natural products,cascade reaction,multicomponent reaction

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