Literature DB >> 27759377

Fighting Cancer with Corroles.

Ruijie D Teo1, Jae Youn Hwang2, John Termini3, Zeev Gross4, Harry B Gray1.   

Abstract

Corroles are exceptionally promising platforms for the development of agents for simultaneous cancer-targeting imaging and therapy. Depending on the element chelated by the corrole, these theranostic agents may be tuned primarily for diagnostic or therapeutic function. Versatile synthetic methodologies allow for the preparation of amphipolar derivatives, which form stable noncovalent conjugates with targeting biomolecules. These conjugates can be engineered for imaging and targeting as well as therapeutic function within one theranostic assembly. In this review, we begin with a brief outline of corrole chemistry that has been uniquely useful in designing corrole-based anticancer agents. Then we turn attention to the early literature regarding corrole anticancer activity, which commenced one year after the first scalable synthesis was reported (1999-2000). In 2001, a major advance was made with the introduction of negatively charged corroles, as these molecules, being amphipolar, form stable conjugates with many proteins. More recently, both cellular uptake and intracellular trafficking of metallocorroles have been documented in experimental investigations employing advanced optical spectroscopic as well as magnetic resonance imaging techniques. Key results from work on both cellular and animal models are reviewed, with emphasis on those that have shed new light on the mechanisms associated with anticancer activity. In closing, we predict a very bright future for corrole anticancer research, as it is experiencing exponential growth, taking full advantage of recently developed imaging and therapeutic modalities.

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Year:  2016        PMID: 27759377      PMCID: PMC6357784          DOI: 10.1021/acs.chemrev.6b00400

Source DB:  PubMed          Journal:  Chem Rev        ISSN: 0009-2665            Impact factor:   60.622


  32 in total

1.  Protein-coated corrole nanoparticles for the treatment of prostate cancer cells.

Authors:  Matan Soll; Qiu-Cheng Chen; Benny Zhitomirsky; Punnajit P Lim; John Termini; Harry B Gray; Yehuda G Assaraf; Zeev Gross
Journal:  Cell Death Discov       Date:  2020-07-28

2.  The photocytotoxicity effect of cationic sulfonated corrole towards lung cancer cells: in vitro and in vivo study.

Authors:  Zhao Zhang; Hua-Jun Yu; Hui Huang; Bei Wan; Shang Wu; Hai-Yang Liu; Hai-Tao Zhang
Journal:  Lasers Med Sci       Date:  2019-02-02       Impact factor: 3.161

3.  Porphyrinoid Drug Conjugates.

Authors:  Jonathan F Arambula; Jonathan L Sessler
Journal:  Chem       Date:  2020-07-09       Impact factor: 22.804

4.  A3- and A2B-fluorocorroles: synthesis, X-ray characterization and antiviral activity evaluation against human cytomegalovirus infection.

Authors:  Sandrine Kappler-Gratias; Léo Bucher; Nicolas Desbois; Yoann Rousselin; Kerstin Bystricky; Claude P Gros; Franck Gallardo
Journal:  RSC Med Chem       Date:  2020-07-13

5.  Can Corrole Dimers Be Good Photosensitizers to Kill Bacteria?

Authors:  Paula S S Lacerda; Maria Bartolomeu; Ana T P C Gomes; Ana S Duarte; Adelaide Almeida; Maria A F Faustino; Maria G P M S Neves; Joana F B Barata
Journal:  Microorganisms       Date:  2022-06-07

6.  Enhanced Synthetic Access to Tris-CF3-Substituted Corroles.

Authors:  Pinky Yadav; Sally Khoury; Atif Mahammed; Maryann Morales; Scott C Virgil; Harry B Gray; Zeev Gross
Journal:  Org Lett       Date:  2020-03-31       Impact factor: 6.005

7.  Corrole-Substituted Fluorescent Heme Proteins.

Authors:  Christopher M Lemon; Michael A Marletta
Journal:  Inorg Chem       Date:  2021-01-29       Impact factor: 5.165

8.  Synthesis, Redox, and Spectroscopic Properties of Pd(II) 10,10-Dimethylisocorrole Complexes Prepared via Bromination of Dimethylbiladiene Oligotetrapyrroles.

Authors:  Maxwell I Martin; Qiuqi Cai; Glenn P A Yap; Joel Rosenthal
Journal:  Inorg Chem       Date:  2020-12-07       Impact factor: 5.165

9.  Dimeric Corrole Analogs of Chlorophyll Special Pairs.

Authors:  Vinay K Sharma; Atif Mahammed; Amir Mizrahi; Maryann Morales; Natalia Fridman; Harry B Gray; Zeev Gross
Journal:  J Am Chem Soc       Date:  2021-05-20       Impact factor: 16.383

10.  Enhancing the reactivity of nickel(ii) in hydrogen evolution reactions (HERs) by β-hydrogenation of porphyrinoid ligands.

Authors:  Zhuo-Yan Wu; Teng Wang; Yin-Shan Meng; Yu Rao; Bing-Wu Wang; Jie Zheng; Song Gao; Jun-Long Zhang
Journal:  Chem Sci       Date:  2017-06-19       Impact factor: 9.825

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