👤 M. P. Fink

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4
Articles
4
Name variants
Also published as: B Fink, Brian D. Fink, D Fink,
articles
TA Kalyanaraman, N Daver, M Mahendra +242 more · 2023 · Expert opinion on therapeutic targets · Taylor & Francis · added 2026-04-20
TA Kalyanaraman, N Daver, M Mahendra, X Zhang, CV Dang, TM Ashton, WG McKenna, LA Kunz-Schughart, Y Xu, D Xue, A Bankhead, M Huang, CR Myers, Y Wang, B Kalyanaraman, SK Biswas, RAJ Smith, CM Porteous, AM Gane, MP Murphy, RC Hartley, E Fokas, M Benej, X Hong, S Vibhute, M Nishida, N Yamashita, T Ogawa, K Chandran, D Aggarwal, RQ Migrino, D Graham, NN Huynh, CA Hamilton, T Capeloa, J Krzystyniak, D d’Hose, JA Van de Velde, AC Rodriguez, NG Yoon, H Lee, SY Kim, S Yoshida, S Tsutsumi, G Muhlebach, A Rasola, L Neckers, D Picard, G Cheng, H Karoui, M Hardy, F Weinberg, R Hamanaka, WW Wheaton, B Fink, L Coppey, E Davidson, EM Gottwald, M Duss, M Bugarski, J Pan, Y Lee, JR Molina, Y Sun, M Protopopova, J Zielonka, M AbuEid, DM McAllister, L McOlash, IK Srivastava, H Rottenberg, AB Vaidya, PD Radloff, J Philipps, M Nkeyi, W Hughes, G Leoung, F Kramer, CD Freeman, NE Klutman, KC Lamp, A Darade, S Pathak, S Sharma, R Dixon, AL Pozniak, HM Watt, GL Nixon, DM Moss, AE Shone, M Fry, M Pudney, MW Mather, E Darrouzet, M Valkova-Valchanova, M Fiorillo, R Lamb, HB Tanowitz, M Xiang, H Kim, VT Ho, N Gupta, SK Srivastava, S Tian, H Chen, W Tan, D Xiong, P Topchyan, RM Loftus, DK Finlay, G Andrejeva, JC Rathmell, X Li, M Wenes, P Romero, T Gaber, C Strehl, F Buttgereit, A Tasdogan, JM Ubellacker, SJ Morrison, B Faubert, V Ramesh, Q Zhang, LP Burton, G Deng, CD Yanes, SR Lord, AL Harris, ME McGuinness, RL Talbert, H Zhao, KD Swanson, B Zheng, L Di Magno, S Manni, F Di Pastena, SR Veiga, X Ge, CA Mercer, R Masoud, G Reyes-Castellanos, S Lac, F Janku, SH Beom, YW Moon, O Ouari, KA Boyle, J Van Wickle, RB Hill, RF Keyes, D McAllister, Z Bielcikova, J Stursa, L Krizova, K Rohlenova, K Sachaphibulkij, KER Hollinshead, SJ Parker, VV Eapen, S Stemberkova-Hubackova, R Zobalova, M Dubisova, CA Reddy, V Somepalli, T Golakoti, S Jayakumar, RS Patwardhan, D Pal, A Mattarei, M Romio, A Managò, RK Pathak, S Marrache, DA Harn, DR Boulware, MF Pullen, AS Bangdiwala, S Crunkhorn, LD Zorova, VA Popkov, EY Plotnikov, J Joseph, A Sikora, L Dong, J Neuzil, A Solmonson, RJ DeBerardinis, V Gouirand, F Guillaumond, S Vasseur, GM Fischer, A Jalali, DA Kircher, VS LeBleu, JT O’Connell, KN Gonzalez Herrera, JH Park, S Vithayathil, S Kumar, F Sotgia, D Whitaker-Menezes, UE Martinez-Outschoorn, CR Bartman, DR Weilandt, Y Shen, YG Najjar, AV Menk, C Sander, AR Jaiswal, AJ Liu, S Pudakalakatti, MJ McManus, JL Franklin, RA Smith, B Mathieu, L Mignion, M Skwarski, DR McGowan, E Belcher, M Zielonka, B Dranka, HR Bridges, JG Fedor, JN Blaza, A Naguib, G Mathew, CR Reczek, SE Weinberg, BD Singer, EM Steinert, Z Zhao, Y Mei, Z Wang, K Vasan, M Werner, NS Chandel, EM De Francesco, B Ózsvári, S Izreig, A Gariepy, I Kaymak, D Kolb, N Kolishetti, B Surnar Show less
Introduction: Drugs targeting mitochondria are emerging as promising antitumor therapeutics in preclinical models. However, a few of these drugs have shown clinical toxicity. Developing mitochondria- Show more
Introduction: Drugs targeting mitochondria are emerging as promising antitumor therapeutics in preclinical models. However, a few of these drugs have shown clinical toxicity. Developing mitochondria-targeted modified natural compounds and US FDA-approved drugs with increased therapeutic index in cancer is discussed as an alternative strategy. Areas Covered: Triphenylphosphonium cation (TPP + )-based drugs selectively accumulate in the mitochondria of cancer cells due to their increased negative membrane potential, target the oxidative phosphorylation proteins, inhibit mitochondrial respiration, and inhibit tumor proliferation. TPP + -based drugs exert minimal toxic side effects in rodents and humans. These drugs can sensitize radiation and immunotherapies. Expert Opinion: TPP + -based drugs targeting the tumor mitochondrial electron transport chain are a new class of oxidative phosphorylation inhibitors with varying antiproliferative and antimetastatic potencies. Some of these TPP + -based agents, which are synthesized from naturally occurring molecules and FDA-approved drugs, have been tested in mice and did not show notable toxicity, including neurotoxicity, when used at doses under the maximally tolerated dose. Thus, more effort should be directed toward the clinical translation of TPP + -based OXPHOS-inhibiting drugs in cancer prevention and treatment. Show less
no PDF DOI: 10.1080/14728222.2023.2261631
anticancer mitochondria synthesis
Chaitanya A. Kulkarni, Brian D. Fink, Bettine E. Gibbs +4 more · 2021 · Journal of Medicinal Chemistry · ACS Publications · added 2026-04-20
Mitochondrial dysfunction is an underlying pathology in numerous diseases. Delivery of diagnostic and therapeutic cargo directly into mitochondria is a powerful approach to study and treat these disea Show more
Mitochondrial dysfunction is an underlying pathology in numerous diseases. Delivery of diagnostic and therapeutic cargo directly into mitochondria is a powerful approach to study and treat these diseases. The triphenylphosphonium (TPP+) moiety is the most widely used mitochondriotropic carrier. However, studies have shown that TPP+ is not inert; TPP+ conjugates uncouple mitochondrial oxidative phosphorylation. To date, all efforts toward addressing this problem have focused on modifying lipophilicity of TPP+-linker-cargo conjugates to alter mitochondrial uptake, albeit with limited success. We show that structural modifications to the TPP+ phenyl rings that decrease electron density on the phosphorus atom can abrogate uncoupling activity as compared to the parent TPP+ moiety and prevent dissipation of mitochondrial membrane potential. These alterations of the TPP+ structure do not negatively affect the delivery of cargo to mitochondria. Results here identify the 4-CF3-phenyl TPP+ moiety as an inert mitochondria-targeting carrier to safely target pharmacophores and probes to mitochondria. Show less
no PDF DOI: 10.1021/acs.jmedchem.0c01671
mitochondria
J. J. Lyamzaev, Y. Y. Tyurina, D. Mohammadyani +85 more · 2019 · Oxidative Medicine and Cellular Longevity · added 2026-04-20
Peroxidation of cardiolipin (CL) in the inner mitochondrial membrane plays a key role in the development of various pathologies and, probably, aging. The four fatty acid tails of CL are usually polyun Show more
Peroxidation of cardiolipin (CL) in the inner mitochondrial membrane plays a key role in the development of various pathologies and, probably, aging. The four fatty acid tails of CL are usually polyunsaturated, which makes CL particularly sensitive to peroxidation. Peroxidation of CL is involved in the initiation of apoptosis, as well as in some other important cellular signaling chains. However, the studies of CL peroxidation are strongly limited by the lack of methods for its tracing in living cells. We have synthesized a new mitochondria-targeted fluorescent probe sensitive to lipid peroxidation (dubbed MitoCLox), where the BODIPY fluorophore, carrying a diene-containing moiety (as in the C11-BODIPY (581/591) probe), is conjugated with a triphenylphosphonium cation (TPP + ) via a long flexible linker that contains two amide bonds. The oxidation of MitoCLox could be measured either as a decrease of absorbance at 588 nm or as an increase of fluorescence in the ratiometric mode at 520/590 nm (emission). In CL-containing liposomes, MitoCLox oxidation was induced by cytochrome c and developed in parallel with cardiolipin oxidation. TPP + -based mitochondria-targeted antioxidant SkQ1, in its reduced form, inhibited oxidation of MitoCLox concurrently with the peroxidation of cardiolipin. Molecular dynamic simulations of MitoCLox in a cardiolipin-containing membrane showed affinity of positively charged MitoCLox to negatively charged CL molecules; the oxidizable diene moiety of MitoCLox resided on the same depth as the cardiolipin lipid peroxides. We suggest that MitoCLox could be used for monitoring CL oxidation in vivo and, owing to its flexible linker, also serve as a platform for producing peroxidation sensors with affinity to particular lipids. Show less
đź“„ PDF DOI: 10.1155/2019/9710208
imaging mitochondria synthesis
B Chapman, L Van Camp, JE Trosko +375 more · 2011 · Metal ions in life sciences · Royal Society of Chemistry · added 2026-04-20
B Chapman, L Van Camp, JE Trosko, VH Mansour, Y Jung, SJ Lippard, J Reedijk, ER Jamieson, GA Natile, LG Marzilli, M Akoboshi, K Kawai, H Maki, K Akuta, Y Ujeno, T Miyahara, JM Pascoe, JJ Roberts, J Rosenberg, P Sato, JM Rosenberg, PH Sato, KA Heminger, SD Hartson, J Rogers, RL Matts, TD Schmittgen, J-F Ju, KD Danenberg, PV Danenberg, LC Shea, T Horikoshi, P Papsai, T Persson, J Aldag, SKC Elmroth, AS Snygg, AA Hostetter, EG Chapman, VJ DeRose, JS Mattick, B Lippert, S Burns, N-K Kim, M Vogt, E Freisinger, RKO Sigel, PB Moore, AM Pyle, RH Crabtree, S Ahmad, AA Isab, S Ali, E Wong, CM Giandomenico, M Akaboshi, K Ono, D Esteban-Fernández, JM Verdaguer, R Ramírez-Camacho, MA Palacios, MM Gómez-Gómez, P Kabolizadeh, J Ryan, N Farrell, I-S Song, N Savaraj, ZH Siddik, P Liu, Y Wei, CJ Wu, MT Kuo, J Zhang, X Zhao, J Goodman, D Hagrman, KA Tacka, A-K Souid, E Gabano, D Colangelo, AR Ghezzi, D Osella, N Kitada, K Takara, T Minegaki, C Itoh, M Tsujimoto, T Sakaeda, T Yokoyama, L Martelli, F Di Mario, E Ragazzi, P Apostoli, R Leone, P Perego, G Fumagalli, M Gemba, E Nakatani, M Teramoto, S Nakano, Z Yang, LM Schumaker, MJ Egorin, EG Zuhowski, Z Guo, KJ Cullen, AJ Giurgiovich, BA Diwan, OA Olivero, LM Anderson, JM Rice, MC Poirier, C Semino, A Kassim, DM Lopez-Larraza, E Lindauer, E Holler, G Samimi, K Katano, AK Holzer, R Safaei, SB Howell, M Rochdi, M Tomioka, M Goodman, AV Klein, TW Hambley, GL Beretta, SC Righetti, L Lombardi, F Zunino, MUA Khan, PJ Sadler, Y Kiyozuka, K Takemoto, A Yamamoto, P Guttmann, A Tsubura, H Kihara, C Meijer, MJA van Luyn, EF Nienhuis, N Blom, NH Mulder, EGE de Vries, R Ortega, P Moretto, A Fajac, J Bénard, Y Llabador, M Simonoff, MD Hall, CT Dillon, M Zhang, P Beale, Z Cai, B Lai, APJ Stampfl, RA Alderden, PJ Beale, JP Berry, P Galle, A Viron, H Kacerovská, A Macieira-Coelho, RG Kirk, ME Gates, C-S Chang, P Lee, T Makita, S Itagaki, T Ohokawa, P Brille, AF LeRoy, Y Gouveia, P Ribaud, G Mathé, C Molenaar, J-M Teuben, RJ Heetebrij, HJ Tanke, GV Kalayda, G Zhang, T Abraham, A Holzer, BJ Larson, W Naerdemann, X-J Liang, D-W Shen, KG Chen, SM Wincovitch, SH Garfield, MM Gottesman, D Fink, S Nebel, S Aebi, H Zheng, B Cenm, A Nehm, R Christen, RL Hoffmann, N Carenini, F Giuliani, S Spinelli, GH Manorek, O Rixe, W Ortuzar, M Alvarez, R Parker, E Reed, K Paull, T Fojo, HC Harder, B Rosenberg, P Jordan, M Carmo-Fonseca, S Tornaletti, SM Patrick, JJ Turchi, PC Hanawalt, WH Ang, M Myint, GE Damsma, A Alt, F Brueckner, T Carell, P Cramer, K Rijal, CS Chow, D Draper, M Hägerlöf, V Monjardet-Bas, MA Elizondo-Riojas, JC Chottard, J Kozelka, M Brindell, G Stochel, T Cheatham, P Kollman, K Chin, KA Sharp, B Honig, P Acharya, S Acharya, P Cheruku, NV Amirkhanov, A Foldesi, J Chattopadhyaya, P Legault, A Pardi, D Rhodes, PW Piper, BFC Clark, JR Rubin, M Sabat, M Sundaralingam, JC Dewan, YT Yu, PA Maroney, E Darzynkiewicz, TW Nilsen, P Fabrizio, J Abelson, SA Woodson, R Dalbies, D Payet, M Leng, M Boudvillain, KM Comess, CE Costello, M Escaffre, S Bombard, M Guerin, T Saison-Behmoaras, B Alguero, JL de la Osa, C Gonzalez, E Pedroso, V Marchan, A Grandas, K Aupeix-Scheidler, S Chabas, L Bidou, JP Rousset, JJ Toulme, M Hagerlof, H Hedman, HK Hedman, U Jungwirth, V Jenei, A Favre, J-C Chottard, JR Thomas, PJ Hergenrother, J Boer, KF Blount, NW Luedtke, L Elson-Schwab, Y Tor, CN N’soukpoe-Kossi, C Descoteaux, E Asselin, J Bariyanga, HA Tajmir-Riahi, G Berube, JS Saad, G Natile, H Schöllhorn, G Raudaschl-Sieber, G Müller, U Thewalt, J Lippert, F Cannito, N Hadjiliadis, E Sletten, PJ Sanz Miguel, M Roitzsch, L Yin, PM Lax, L Holland, O Krizanovic, M Lutterbeck, M Schurmann, EC Fisch, SE Sherman, D Gibson, AH-J Wang, A Gelasco, GN Parkinson, GM Arvanitis, L Lessinger, SL Ginell, R Jones, B Gaffney, HM Berman, CC Correll, A Munishkin, Y-L Chan, Z Ren, IG Wool, TA Steitz, FM Jucker, HA Heus, PF Yip, EHM Moors, S Gelbel, S Banckenko, M Engell, E Lanka, W Saenger, PS Klosterman, SA Shah, K Hindmarsch, DA House, MM Turnbull, MF Osborn, JA Cowan, DE Draper, D Grilley, AM Soto, M Roychowdhury-Saha, DH Burke, AY Keel, RP Rambo, RT Batey, JS Kieft, E Ennifar, P Walter, P Dumas, DM Calderone, EJ Mantilla, M Hicks, DH Huchital, W Rorer Murphy, RD Sheardy, FR Keene, JA Smith, JG Collins Show less
In this chapter several aspects of Pt(II) are highlighted that focus on the properties of Pt(II)-RNA adducts and the possibility that they influence RNA-based processes in cells. Cellular distribution Show more
In this chapter several aspects of Pt(II) are highlighted that focus on the properties of Pt(II)-RNA adducts and the possibility that they influence RNA-based processes in cells. Cellular distribution of Pt(II) complexes results in significant platination of RNA, and localization studies find Pt(II) in the nucleus, nucleolus, and a distribution of other sites in cells. Treatment with Pt(II) compounds disrupts RNA-based processes including enzymatic processing, splicing, and translation, and this disruption may be indicative of structural changes to RNA or RNA-protein complexes. Several RNA-Pt(II) adducts have been characterized in vitro by biochemical and other methods. Evidence for Pt(II) binding in non-helical regions and for Pt(II) cross-linking of internal loops has been found. Although platinated sites have been identified, there currently exists very little in the way of detailed structural characterization of RNA-Pt(II) adducts. Some insight into the details of Pt(II) coordination to RNA, especially RNA helices, can be gained from DNA model systems. Many RNA structures, however, contain complex tertiary folds and common, purine-rich structural elements that present suitable Pt(II) nucleophiles in unique arrangements which may hold the potential for novel types of platinum-RNA adducts. Future research aimed at structural characterization of platinum-RNA adducts may provide further insights into platinum-nucleic acid binding motifs, and perhaps provide a rationale for the observed inhibition by Pt(II) complexes of splicing, translation, and enzymatic processing. Show less
no PDF DOI: 10.1039/9781849732512-00347
Pt amino-acid coordination-chemistry