👤 Young AS

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Also published as: Al-Bogami AS, Sobolev AS, V. van As, Ito AS, Dayoub AS, Kumbhar AS, Al-Ayed AS
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Young AS, Mullins CE, Sehgal N +9 more · 2025 · JNCI cancer spectrum · Oxford University Press · added 2026-04-20
Despite advances in understanding genetic susceptibility to cancer, much of cancer heritability remains unidentified. At the same time, the makeup of industrial chemicals in our environment only grows Show more
Despite advances in understanding genetic susceptibility to cancer, much of cancer heritability remains unidentified. At the same time, the makeup of industrial chemicals in our environment only grows more complex. This gap in knowledge on cancer risk has prompted calls to expand cancer research to the comprehensive, discovery-based study of nongenetic environmental influences, conceptualized as the "exposome." Show less
📄 PDF DOI: 10.1093/jncics/pkae122
review
Q. Dan, X. Dan, R. Jiang +1557 more · 2023 · Advanced Science · Wiley · added 2026-04-20
Q. Dan, X. Dan, R. Jiang, Z. Wang, D. Dai, L. Sun, A. Caschera, L. Lazzara, D. Piergallini, B. Ricci, A. Tuscano, F. Vanzulli, D. R. Czeyda‐Pommersheim, J. R. Martin, B. Costello, J. Kalb, N. Wallyn, S. Anton, T. F. Akram, S. N. Vandamme, M. A. Gandhi, J. G. Brown, D. A. Wong, C. B. Aguirre, N. Sirlin, E. Naseri, F. Ajorlou, Y. Asghari, N. Pilehvar‐Soltanahmadi, P. Tsapis, I. Dey, N. Blakey, V. T. C. Stone, X. Tsang, T. T. W. Li, G. S. Wong, K. D. Filonov, L.‐M. Piatkevich, J. Ting, K. Zhang, V. V. Kim, L. Verkhusha, A. R. Truong, P. Ferre‐D'Amare, P. J. Charalampaki, A. Proskynitopoulos, M. Heimann, A. J. Nakamura, M. G. Sinnamon, Y. Neuwirth, S. M. Song, S. Schultz, X. Liu, C. M. Xu, G. C. Sehgal, T. Karakousis, M. von Knorring, A. Mogensen, S. V. Upadhyay, D. Dalvi, A. Maresca, M. Lakshmanan, A. Abedi, A. Bar‐Zion, G. J. Farhadi, J. O. Lu, D. Szablowski, S. Wu, M. G. Yoo, N. Shapiro, S. von Knebel Doeberitz, L. Maksimovic, D. Loi, A. Paech, G. J. Lakshmanan, A. Lu, S. P. Farhadi, M. Nety, A. Kunth, D. Lee‐Gosselin, R. W. Maresca, M. Bourdeau, J. Yin, C. Yan, D. Witte, F. S. Malounda, L. Foster, M. G. Schroder, M. G. Shapiro, R. M. Shapiro, L. J. Ramirez, G. Sperling, J. Sun, A. Sun, D. V. Pines, V. S. Schaffer, H. Bajaj, M. W. Kang, S. Kang, H. S. Kashiwagi, V. H. Choi, A. E. Roberts, A. J. Frias, C. C. Fordham, N. Hacherl, K. Patel, B. Jones, M. Myers, J. Abraham, M. Gendreau, A. B. Ormo, K. Cubitt, L. A. Kallio, R. Y. Gross, S. J. Tsien, J. Remington, F. Wiedenmann, G. U. Oswald, N. C. Nienhaus, G. H. Shaner, M. W. Patterson, R. N. Davidson, M. W. Day, N. C. Davidson, R. E. Shaner, P. A. Campbell, B. N. G. Steinbach, A. E. Giepmans, R. Y. Palmer, M. M. Tsien, O. V. Karasev, K. A. Stepanenko, K. K. Rumyantsev, V. V. Turoverov, K. Verkhusha, C. Vintersten, M. Monetti, P. Z. Gertsenstein, L. Zhang, S. Laszlo, A. Biechele, A. Nagy, S. Amsterdam, N. Lin, T. Hopkins, A. Matsumoto, K. Suetsugu, M. Hasegawa, Y. Nakamura, H. Shibata, T. Aoki, H. Kunisada, M. Tsurumi, M. Shimizu, R. M. Bouvet, Q. T. Hoffman, E. S. Nguyen, T. A. Olson, T. Aguilera, M. Jiang, L. G. Scadeng, R. Y. Ellies, M. Tsien, B. Zhao, H. Li, F. Zhang, N. C. Zhang, J. C. Rockwell, S. H. Lagarias, S. J. Bhoo, J. Davis, B. Walker, R. D. Karniol, S. J. Vierstra, A. V. Davis, R. D. Vener, L. Vierstra, P. A. O'Brien, K. Hosick, D. E. John, T. D. Stec, X. Hinds, A. Shu, M. Z. Royant, T. A. Lin, V. Aguilera, P. A. Lev‐Ram, R. Y. Steinbach, K. D. Tsien, F. V. Piatkevich, V. V. Subach, D. M. Verkhusha, V. V. Shcherbakova, M. Shcherbakova, A. V. Baloban, M. Emelyanov, P. Brenowitz, V. V. Guo, R. Verkhusha, Y. Liu, K. Xu, Z. Xu, S. K. Dai, R. Donnelly, S. P. H. Cabrera, J. R. Mao, B. Christin, W. Wu, J. J. Guo, J. S. Bravo‐Cordero, J. E. Condeelis, L. Segall, D. M. Hodgson, O. V. Shcherbakova, K. K. Stepanenko, V. V. Baloban, J. S. Verkhusha, K. Y. Paige, S. R. Wu, E. V. Jaffrey, P. J. Dolgosheina, R. L. Unrau, M. D. Strack, S. R. Disney, K. D. Jaffrey, M. C. Warner, W. Chen, R. L. Song, A. Strack, S. R. Thorn, A. R. Jaffrey, A. Ferre‐D'Amare, E. Autour, M. Westhof, G. S. Ryckelynck, J. D. Filonov, N. Moon, S. R. Svensen, A. Jaffrey, S. C. Y. Autour, A. D. Jeng, A. Cawte, A. Abdolahzadeh, S. S. S. Galli, D. Panchapakesan, M. Rueda, P. J. Ryckelynck, A. Unrau, M. Arora, A. Sunbul, W. Jaeschke, G. S. Song, H. Filonov, M. Kim, X. Hirsch, J. D. Li, S. R. Moon, M. Jaffrey, J. I. Jaeschke, M. N. Traylor, A. C. Pernik, S. K. Sternisha, K. G. McBrayer, Y. Abdullah, Y. Harada, T. Murayama, E. Takamatsu, H. Otsuji, S. Tanaka, F. Broekx, S. Weyns, W. De Vleeschouwer, S. Stummer, S. Stocker, H. Wagner, C. Stepp, C. Fritsch, A. E. Goetz, R. Goetz, H. J. Kiefmann, W. Reulen, U. Stummer, T. Pichlmeier, O. D. Meinel, F. Wiestler, H. J. Zanella, A. L.‐G. S. Reulen, A. P. K. K. K. Group, R. Mudiyanselage, M. A. Wu, K. Leon‐Duque, M. Ren, J. You, J. Vachtenheim, E. Borovansky, I. Dimitrow, A. Riemann, M. J. Ehlers, J. Koehler, P. Norgauer, K. Elsner, M. Koenig, S. Kaatz, F. Seidenari, C. Arginelli, P. M. W. Dunsby, K. French, C. Koenig, C. Magnoni, G. Talbot, J. Ponti, P. Staley, A. K. Grogan, H. Samadi, M. S. Cui, X. Cohen, E. I. Yang, E. V. Galanzha, P. M. Shashkov, J. Y. Spring, V. P. Suen, E. I. Zharov, V. P. Galanzha, Z. Zharov, W. Habli, R. AlChamaa, H. Saab, M. L. Kadara, Y. Khraiche, F. Sun, Z. Ding, R. Chen, C. Zhang, Y. Li, Y. Xu, R. Zhang, X. Ni, G. Li, Y. Yang, P. J. Sun, B. Stang, X. Fan, X. Yang, S. Li, H. Lv, J. Zhang, L. Li, B. Wang, X. Qu, R. Peng, D. Zhang, D. Sheng, Y. Wang, K. Yao, Z. Yang, L. Wang, Y. Deng, S. Chen, M. Sirsi, L. Borden, S. V. Abou‐Elkacem, J. K. Bachawal, F. Willmann, F. Pfeifer, S. Pfeifer, P. DasSarma, A. Arora, A. Lakshmanan, A. Nety, R. W. Lee‐Gosselin, D. Bourdeau, M. G. Maresca, A. Shapiro, A. E. Oren, D. Walsby, J. M. Lee‐Gosselin, Y.‐L. Melis, R. W. Ni, D. M. Bourdeau, M. G. Kochmann, J. O. Shapiro, A. Szablowski, M. G. Bar‐Zion, P. W. Shapiro, A. Goodwill, M. Neogy, F. S. Yin, D. V. Foster, S. M. Schaffer, L. Conolly, J. Xie, T. Song, F. Jiang, R. C. Yan, M. T. Hurt, M. Buss, K. Duan, M. Y. Wong, D. P. You, M. B. Sawyer, P. Swift, P. Dutka, D. R. Barturen‐Larrea, Z. Mittelstein, M. H. Jin, R. Farhadi, M. G. Deshpande, G. H. Farhadi, D. P. Ho, R. W. Sawyer, M. G. Bourdeau, D. Shapiro, T. Maresca, A. Payen, B. Lee‐Gosselin, D. Ling, C. Malounda, M. Demene, M. G. Tanter, Z. Lakshmanan, S. P. Jin, D. P. Nety, A. Sawyer, M. B. Malounda, D. Swift, T. Hao, F. Ai, X. Goerner, V. M. Hu, M. Runge, K. M. Tweedle, A. H. Ward, R. S. Aletras, L. Balaban, T. J. Schroeder, C. Lowery, D. E. Hilty, A. Wemmer, J. J. Pines, J. Neil, A. M. Badaut, A. Fukuda, K. G. Jullienne, Y. Petry, V. S. Jasanoff, E. Lelyveld, F. H. Brustad, A. Arnold, S. M. Jasanoff, J. M. Cohen, J. G. Rifkind, E. Mohanty, P. C. M. Nagababu, S. M. van Zijl, J. A. Eleff, J. M. E. Ulatowski, A. M. Oja, R. J. Ulug, R. A. Traystman, K. Kauppinen, P. Uludag, J. P. B. Blinder, S. P. O'Connor, J. C. Robinson, H. Waterton, G. Kroll, T. Zaharchuk, J. J. Christen, M. Heit, B. Iv, G. Jacobi, S. Bongartz, A.‐C. Partovi, M. Schulte, A. B. Aschwanden, M. G. Lumsden, M. Davies, G. P. Loebe, S. Noon, J. K. Karimi, D. Lyo, R. W. Staub, D. Huegli, M. G. Bilecen, G. G. Shapiro, P. A. Westmeyer, J. O. Romero, B. Szablowski, A. Kuester, C. R. Shah, R. Otey, F. H. Langer, A. Jasanoff, L. X. Hai, T. Cai, V. S. Lee, A. Lelyveld, T. Jasanoff, L. X. Lee, V. S. Cai, A. Hai, H. Jasanoff, B. Gunshin, U. V. Mackenzie, Y. Berger, M. F. Gunshin, W. F. Romero, S. Boron, J. L. Nussberger, M. A. Gollan, B. B. Hediger, K. U. Bartelle, G. A. Szulc, J. J. Suero‐Abreu, D. H. Rodriguez, C. M. Turnbull, S. A. Lewis, R. Graves, H. F. Hernandez, T. E. Valdovinos, W. Barnhart, M. E. Cai, R. J. Meyerand, M. Nickles, P. M. Suzuki, P. Harrison, A. Arosio, J. R. Yevenes, J. Harris, Y. Marles‐Wright, R. N. Gossuin, P. Muller, L. Gillis, A. E. Bartel, Y. Z. Deans, L. M. Wadghiri, X. Bernas, B. K. Yu, D. H. Rutt, X. Turnbull, J. He, B. Cai, Y. Zhong, A. V. Qin, H. Naumova, V. Reinecke, J. Yarnykh, C. Deem, C. E. Yuan, M. Murry, V. Campan, G. D. Lionetti, F. Aquaro, M. Forini, L. Matteucci, F. Vannucci, C. Chiuppesi, M. Di Cristofano, M. Faggioni, L. Maioli, E. Barile, M. Messina, A. Lombardi, M. Pucci, F. A. Pistello, B. Recchia, E. T. Iordanova, C. Ahrens, J. Song, C. Wang, S. Mo, X. Mu, X. Jiang, Z. Zhong, G. Zhao, Y. Zhou, F. Zhuo, L. Chen, T. Kong, J. Lu, T. Yang, X. Yu, K. Shi, H. S. Li, J. Kim, J. H. Woo, H. J. Lee, Y. Joo, H. Choi, W. K. Kim, S. J. Moon, K. Kim, C. M. Bernau, A. M. Lewis, M. S. Petelinsek, D. J. Reagan, V. B. Niles, E. Mattis, M. Meyerand, C. N. Suzuki, M. Svendsen, H. Wang, F. He, Y. Gao, S. C. Guo, L. J. Beeman, J. F. Mandarino, K. M. Georges, P. C. Bennett, J. M. Ulatowski, F. Kauppinen, C. Mickoleit, S. Jorke, D. S. Geimer, J. P. Maier, J. Muller, C. Demut, D. Grafe, J. H. Schuler, J. Clement, E. C. H. Liu, R. C. Cheng, S.‐H. Long, L. Yang, P.‐H. Wang, J. Cheng, D. Yang, H. Wu, A. W. S. Mao, S. M. Chan, D. Pereira, S. R. Moss, P. Williams, A. Murray, B. Taylor, X. Todorich, B. Zhang, W. E. Slagle‐Webb, J. R. Seaman, T. T. Connor, D. H. Li, C. D. C. Chung, S. V. Allen, F. M. Torti, J. G. Torti, C. Y. Cyster, F. M. Chen, E. C. Brodsky, M. C. Niemi, W. E. Nakamura, M. R. Seaman, P. S. Daws, T. B. Patrick, M. I. Rodrigues, S. K. Kettunen, A. A. Lyons, K. M. Neves, R. Brindle, R. Blakemore, D. Uebe, S. Schueler, M. Meriaux, B. Boucher, Y. Marty, S. Lalatonne, L. Preveral, C. T. Motte, F. Lefevre, F. Geffroy, M. Lethimonnier, D. Pean, G. Garcia, D. Adryanczyk‐Perrier, N. Pignol, T. Ginet, S. Orlando, E. Mannucci, G. Fantechi, S. Conti, A. Tambalo, C. Busato, L. Innocenti, R. Ghin, P. Bassi, F. Arosio, C. Orsini, M. Sangregorio, M. F. Corti, P. Casula, A. Marzola, A. Lascialfari, P. Sbarbati, M. D. Tartaj, S. Morales, T. Veintemillas‐Verdaguer, C. J. Gonzalez‐Carreno, K. Serna, C. Grunberg, B. M. Wawer, D. Tebo, Z. Schuler, X. Xiang, J. Yang, W. Xu, Z. Lai, J. Hu, L. Tian, Q. Geng, E. Fang, M. Erdal, Y. Demirbilek, O. Yeh, L. Akbal, D. Ruff, A. Bozkurt, Y. Cabuk, B. Senel, O. Gumuskaya, S. Algin, S. Colak, E. B. Esener, M. Denkbas, F. Boucher, S. Geffroy, E. Bellanger, G. Selingue, M. Adryanczyk‐Perrier, C. T. Pean, D. Lefevre, S. Ginet, D. E. Meriaux, R. Goldhawk, A. Rohani, N. Sengupta, F. S. Gelman, K. M. Prato, A. C. Jones, M. D. Pollard, B. Pagel, G. Wu, M. Warnock, C. Zaiss, M. Lin, Z. Chen, L. Zhou, D. Mu, R. Nanz, G. Tuura, Y. Delso, Y. Jia, K. Chen, Y. Geng, Y. Cheng, J. Li, H. Qiu, R. Huang, R. P. R. Krishnamoorthy, P. Nanga, H. Bagga, R. Hariharan, S. Reddy, M. Chen, Y. Jiang, B. Yuan, Z.‐X. Zhang, C. Jiang, X. Ye, C. Yuan, S. Wang, J. Kuddannaya, D. R. Zhang, Z. Arifin, P. Han, G. Walczak, J. W. M. Liu, P. C. M. Bulte, N. N. van Zijl, G. Yadav, K. W. Y. Song, M. T. Chan, M. T. McMahon, A. A. McMahon, J. Y. Gilad, P. Z. Zhou, J. W. M. Sun, J. Y. van Zijl, J. F. Zhou, D. A. Payen, R. J. Wilson, P. C. M. Traystman, N. van Zijl, A. X. McVicar, D. F. Li, M. Goncalves, S. O. Bellyou, M. A. M. Meakin, R. Prado, A. Bartha, Y. Sakata, T. Fushimi, Y. Okada, T. Arakawa, S. Kunieda, A. Minamiguchi, N. Kido, S. Sakashita, K. Miyamoto, B. Togashi, K. Joo, Y. S. Han, S.‐K. Choi, S. S. Lee, J. H. Ahn, S.‐G. Chang, S. H. Kang, C. Zhou, C. Su, L. Liu, J. Zhao, J. Jiang, S. Zhang, W. Li, J. Zhu, Y. S. Wang, S. S. Choi, S.‐K. Ahn, J. H. Lee, S. Zhou, C. G. Jiang, Y. Eberhart, H.‐Y. Zhang, Z. Heo, L. Wen, H. Blair, M. Qin, A. Lim, J. D. Quinones‐Hinojosa, P. B. Weingart, M. G. Barker, J. Pomper, P. C. M. Laterra, J. O. van Zijl, J. Blakeley, H. Zhou, H. Yu, T. Lou, X. Zou, Z. Jiang, Y. Huang, C. Du, L. Jiang, J. Ma, W. Zhu, Q. He, J. Rui, Z. Zhou, S. Wen, H. Jiang, Y. Lu, Y. Feng, D.‐H. Heo, J. Lee, C. Wen, X. Su, M. Zhou, S.‐Y. Wang, M. Li, J.‐Y. Chen, D.‐T. Zhou, C. Peng, Y.‐M. Zhang, M. Dai, X. Wang, C.‐F. Hong, Q. Chang, B. Li, H. Ma, H.‐Y. Xiang, Y. Heo, D.‐H. Zhang, S. Lee, R. C. Leigh, P. C. M. Koehler, J. van Zijl, J. Wang, H.‐K. Zhou, K. Jeong, J. Han, Y. S. Zhao, X. Ahn, Y. Ma, Y. Bai, X. Lin, T. Hong, E. M. Ma, J. Haacke, J. Zhou, M. Wang, P. C. M. Zhou, G. W. J. van Zijl, Y. K. Harston, N. Tee, T. W. Blockley, S. Okell, G. Thandeswaran, F. Shaya, M. Sheerin, S. Cellerini, P. Payne, M. Jezzard, J. Chappell, A. Kennedy, J. Tietze, I. K. Blicher, L. Mikkelsen, M. K. Ostergaard, S. A. Strother, M. J. Smith, R. J. Donahue, T. F. Harris, L. M. Cloughesy, P. L. Liau, A. Nghiemphu, W. B. Lai, B. M. Pope, R. J. Ellingson, R. M. Liau, J. P. Prins, D. Antonios, W. H. Li, W. B. Yong, A. Pope, P. L. Lai, B. M. Nghiemphu, K. Ellingson, A. Cai, D. R. Singh, R. P. R. Roalf, M. Nanga, H. Haris, R. Gur, K. Reddy, M. Cai, A. Haris, F. Singh, J. H. Kogan, H. Greenberg, J. A. Hariharan, R. Detre, F. Reddy, A. Kogan, C. Singh, M. Debrosse, K. Haris, R. P. Cai, H. Elliott, K. A. Reddy, R. P. R. Davis, S. Nanga, S. H. Das, P. N. Chen, J. R. Hadar, T. H. Pollard, R. T. Lucas, B. Shinohara, H. Litt, M. A. Hariharan, J. A. Elliott, D. R. Reddy, P. E. Nanga, H. Rupert, M. Hariharan, M. E. Quarmley, E. Calkins, K. Dress, M. A. Prabhakaran, P. J. Elliott, R. C. Moberg, R. E. Gur, B. I. Reddy, K. P. Turetsky, A. N. O'Grady, B. D. Dula, L. M. Lyttle, B. N. Thompson, B. A. Conrad, L. J. Box, S. McKeithan, F. Pawate, B. A. Bagnato, P. Landman, S. A. Newhouse, M. Smith, K. Nath, R. Singh, F. Crescenzi, G. Kogan, S. Verma, H. Reddy, E. R. Hariharan, R. Melhem, P. Reddy, S. Bagga, R. Pickup, D. Crescenzi, A. Martinez, K. Borthakur, A. D'Aquilla, G. Singh, J. A. Verma, J. Detre, J. Reddy, L. Pepin, M.‐A. Francelle, L. Carrillo‐de Sauvage, P. de Longprez, K. Gipchtein, J. Cambon, E. Valette, J. Brouillet, W. Flament, R. R. Ling, G. Regatte, A. Navon, S. Jerschow, A. J. R. Glyn‐Jones, R. Palmer, A. J. Agricola, T. L. Price, H. Vincent, A. J. Weinans, Y. H. Carr, H.‐K. Yang, J.‐S. Jeong, S. Suh, R. Brinkhof, V. Nizak, J. J. Khlebnikov, D. W. J. Prompers, D. B. F. Klomp, X. Saris, N. N. Xu, L. Yadav, J. Knutsson, R. Hua, E. Kalyani, J. Hall, J. Laterra, R. Blakeley, M. Strowd, P. Pomper, K. W. Y. Barker, G. Chan, M. T. Liu, R. D. McMahon, P. C. M. Stevens, K.‐P. Weygand, A. S. R. Hwang, Y. Mohamed, C. D. Ding, S. Y. Fuller, S. J. Lai, J. Frank, K. W. Y. Zhou, Y. McMahon, G. Kato, Z. M. Bulte, D. Bhujwalla, P. C. M. Artemov, S. van Zijl, R. Walker‐Samuel, F. Ramasawmy, M. Torrealdea, V. Rega, S. P. Rajkumar, S. Johnson, M. Richardson, H. G. Goncalves, E. Parkes, D. L. Arstad, R. B. Thomas, M. F. Pedley, X. Lythgoe, P. C. M. Golay, C. K. van Zijl, J. Jones, C. R. Ren, A. D. Malloy, C. O. Sherry, J. Miller, E. Y. Cao, B. M. Chekmenev, A. D. Damon, J. C. Cherrington, G. L. Gore, A. J. W. Simegn, F. C. Van der Kouwe, E. M. Robertson, A. Meintjes, M. Alhamud, R. Wyss, K. Kaddurah‐Daouk, R.‐W. Cai, X. J. Tain, F. C. Zhou, A. M. Damen, H. Scotti, H. Hariharan, R. Poptani, H. Singh, W. Poptani, H. Lu, X. J. Hariharan, R. Zhou, Z. Reddy, Y. Nguyen, J. L. Chen, Z. Shaw, E. Dawkins, D. Marbyn, C. Li, R. P. R. DeBrosse, N. Nanga, K. Wilson, M. D'Aquilla, F. Hariharan, K. Yan, N. Wade, D. Sara, C. Worsley, E. Parris‐Skeete, R. McCormick, Z. Z. Xiao, L. Cunningham, K. L. Fishbein, D. R. Nathanson, V. A. Lynch, M. Stallings, M. J. Yudkoff, R. Falk, S. E. Reddy, X.‐Y. McCormack, F. Xie, E. C. Wang, J. Lin, D. F. Xu, J. C. Gochberg, Z. Gore, S. Zu, A. A. Meier, J. A. Gilad, C. Brandon, E. Qian, J. F. Gao, M. Abisambra, M. J. Vandsburger, P. C. M. Donahue, S. Donahue, C. R. Rane, M. K. Thompson, A. O. Strother, S. A. Scott, Z. Smith, F. Hu, X. Huang, X. Guo, S. Quan, X. Zhou, Z. Zhao, F. Wen, S. Huang, X. Lu, D. Hu, J. Zu, K. Zhou, Z. Yan, C. Fu, K. Yang, D.‐H. Jiang, H.‐Y. Lee, R. N. Zhang, J. E. Cole, J. Van Eyk, J. Zaiss, S. Windschuh, D. Goerke, J.‐E. Paech, S. Meissner, P. Burth, W. Kickingereder, M. Wick, H.‐P. Bendszus, M. E. Schlemmer, P. Ladd, A. Bachert, C. K. Radbruch, M. J. Jones, P. C. M. Schlosser, M. G. van Zijl, X. Pomper, J. Golay, J. O. Zhou, M. Hua, M. G. Laterra, P. C. M. Pomper, M. Zhu, L. Lim, A. Blair, S. A. Quinones‐Hinojosa, C. G. Messina, M. G. Eberhart, P. B. Laterra, P. C. M. Barker, A. N. Blakeley, S. Dula, L. M. Pawate, B. N. Dethrage, B. E. Conrad, R. L. Dewey, S. A. Barry, A. N. Smith, E. M. Dula, B. A. Asche, E. B. Landman, S. Welch, S. Pawate, J. C. Sriram, S. A. Gore, J. A. Smith, J. M. Wells, H. E. O'Callaghan, N. M. Holmes, R. A. Powell, B. Johnson, F. Siow, O. Torrealdea, S. Ismail, X. Walker‐Samuel, M. Golay, S. Rega, M. J. Modat, S. Cardoso, A. J. Ourselin, Z. Schwarz, T. K. Ahmed, M. J. Murray, E. C. O'Neill, N. Collins, M. F. Colgan, J. Lythgoe, C. van Zijl, A. Schleich, L. Mueller‐Lutz, J. Zimmermann, B. Boos, H.‐J. Schmitt, G. Wittsack, F. Antoch, M. Miese, Q. Kim, M.‐P. Chan, K. M. C. Anthony, D. Cheung, P.‐L. Samartzis, C. Khong, M. Mueller‐Lutz, B. Eichner, F. Schmitt, B. Matuschke, C. Bittersohl, H.‐J. Zilkens, C. Miese, F. Mueller‐Lutz, P. Matuschke, R. Sewerin, B. Sengewein, B. Schmitt, H.‐J. Ostendorf, K. Wittsack, G. Stanke, R. P. R. Haris, A. Nanga, K. Singh, F. Cai, H. Kogan, M. Kogan, C. Cai, H. Nanga, J. J. Reddy, T. Chung, J. H. Jin, S.‐G. Lee, E. Kim, M. Rerich, A. Zaiss, M. E. Korzowski, F. Bachert, R. B. Kogan, E. K. Stafford, G. E. Englund, H. Gold, R. Reddy, D. Bammer, P. W. Le Bihan, P. E. Schaefer, R. G. Grant, L. Gonzalez, M. Zhang, Z. Tang, J. Min, X. Lei, N. M. Henderson, K. de Souza, S. F. Thomas, V. A. Riches, S. A. Morgan, D. P. Sohaib, C. C. Dearnaley, N. J. Parker, V. van As, R. Granata, O. Fusco, B. Catalano, F. Guarino, F. Granata, A. Tatangelo, M. Avallone, R. Piccirillo, F. Palaia, A. Izzo, P. Petrillo, L. S. Agre, M. King, W. B. Yasui, O. P. Guggino, Y. Ottersen, A. Fujiyoshi, S. Engel, I. Nielsen, A. Direito, M. A. Madeira, G. Brito, G. Soveral, G.‐Y. Tang, H. Tomita, A. J. Dorward, E. Yool, A. R. Smith, T. J. Townsend, J. E. Price, A. S. Hardingham, A. J. Verkman, P.‐w. Smith, L. Phuan, M. O. Tradtrantip, J. A. Anderson, J. I. Hubbard, D. K. Szu, E. A. Binder, O. P. Nagelhus, M. C. Ottersen, A. S. Papadopoulos, C. Verkman, E. Iacovetta, R. Rudloff, M. Kirby, G. Xiao, B. Hu, Y. Desai, B. Hsu, J. G. Schneller, A. I. Hobbs, A. Mehta, S. Linninger, M. C. Saadoun, A. M. Papadopoulos, J. Fukuda, H. Badaut, C. Chu, H. Huang, J. Ding, Z. Dong, X. Gao, Q. Tang, C. Dong, J. Mai, T. Li, T. Wang, Y.‐L. Lu, J. Lan, T. Zhao, S. Ma, Y.‐L. Li, X. Lan, J.‐C. Wang, X.‐C. Lou, B. Ma, V. Zhang, F. Gradinaru, J. Ramakrishnan, R. Mattis, I. Prakash, I. Diester, K. R. Goshen, K. Thompson, Y.‐W. Deisseroth, P. Shieh, P. Minguez, J. J. Bork, D. L. Auburger, G. Guilbride, B. Kramer, E. Bukau, J. N. Natan, S. A. Wells, J. A. Teichmann, A. Marsh, H. C. Mukherjee, P. Davis, G. J. Ramesh, M. G. Lu, Y. Shapiro, B. W. Wang, E. J. Roose, V. Palovcak, I. J. Carnevale, J. P. F. Dmochowski, K. Werner, Y. Mishra, P. Huang, S. Vetschera, A. Glasl, K. Chmyrov, V. Richter, A. C. Ntziachristos, P. Stiel, K. Vetschera, J. P. Mishra, A. Fuenzalida‐Werner, V. Chmyrov, K. Stiel, K. Ono, K. Fuma, M. Tabata, H. S. Sawada, H. R. Kim, S. H. Cho, J. S. Choi, W. K. Woo, Y. Moon, H. S. Choi, K.‐W. Kim, K.‐M. Cho, Y. J. Lee, S.‐J. Yi, H. J. Eun, S. H. Woo, T.‐K. Choi, C. Whangbo, D.‐Y. Choi, W. K. Noh, S. Moon, R. Cheng, Y. Mi, G. Xu, J. Jin, Y. Zhang, F. Chen, C. Liu, D. Jiang, E. M. Wu, B. Haacke, H. Cohen, G. Dafni, A. Meir, M. Harmelin, M.‐R. Neeman, A. Lisy, C. Hartung, D. Lang, W. Schueler, J. R. Richter, W. A. Reichenbach, I. Kaiser, A. Hilger, Y. Bar‐Shir, K. W. Y. Liang, A. A. Chan, J. W. M. Gilad, D. I. Bulte, A. Piraner, H. C. Farhadi, D. Davis, D. Wu, J. O. Maresca, M. G. Szablowski, G. Farhadi, M. Ho, B. Kunth, A. Ling, R. W. Lu, L. Bourdeau, M. G. Schroeder, G. J. Shapiro, A. Farhadi, M. G. Mukherjee, J. O. Farhadi, S. R. Lee‐Gosselin, A. Barnes, R. W. Lakshmanan, M. Shapiro, E. Bekiesinska‐Figatowska, K. Sawicka, O. Zak, J. Szczygielski, L. Stritzker, M. Kirscher, N. C. Scadeng, S. Deliolanis, P. Morscher, K. Symvoulidis, Q. Schaefer, M. Buckel, U. Hess, W. G. Donat, V. Bradley, A. A. Ntziachristos, T. Szalay, A. Repenko, A. Rix, J. Nedilko, A. Rose, R. Hermann, S. Vinokur, R. Moli, M. Cao‐Milan, G. Mayer, A. von Plessen, L. Fery, W. De Laporte, D. N. Lederle, A. J. C. Chigrin, J. E. Kuehne, Z. Lemaster, A. Wang, F. Hariri, Y. Hu, C. V. Huang, R. Barback, N. C. Cochran, J. V. Gianneschi, R. J. Jokerst, A. E. Paproski, K. Forbrich, M. M. Wachowicz, R. J. Hitt, A. Zemp, F. Farhadi, G. G. Sigmund, M. G. Westmeyer Show less
Abstract Imaging contrast agents are widely investigated in preclinical and clinical studies, among which biogenic imaging contrast agents (BICAs) are developing rapidly and playing an increasingly i Show more
Abstract Imaging contrast agents are widely investigated in preclinical and clinical studies, among which biogenic imaging contrast agents (BICAs) are developing rapidly and playing an increasingly important role in biomedical research ranging from subcellular level to individual level. The unique properties of BICAs, including expression by cells as reporters and specific genetic modification, facilitate various in vitro and in vivo studies, such as quantification of gene expression, observation of protein interactions, visualization of cellular proliferation, monitoring of metabolism, and detection of dysfunctions. Furthermore, in human body, BICAs are remarkably helpful for disease diagnosis when the dysregulation of these agents occurs and can be detected through imaging techniques. There are various BICAs matched with a set of imaging techniques, including fluorescent proteins for fluorescence imaging, gas vesicles for ultrasound imaging, and ferritin for magnetic resonance imaging. In addition, bimodal and multimodal imaging can be realized through combining the functions of different BICAs, which helps overcome the limitations of monomodal imaging. In this review, the focus is on the properties, mechanisms, applications, and future directions of BICAs. Show less
📄 PDF DOI: 10.1002/advs.202207090
Fe amino-acid imaging review
Ulasov AV, Rosenkranz AA, Georgiev GP +1 more · 2022 · Life Sciences · Elsevier · added 2026-04-20
The Nrf2 transcription factor governs the expression of hundreds genes involved in cell defense against oxidative stress, the hallmark of numerous diseases such as neurodegenerative, cardiovascular, s Show more
The Nrf2 transcription factor governs the expression of hundreds genes involved in cell defense against oxidative stress, the hallmark of numerous diseases such as neurodegenerative, cardiovascular, some viral pathologies, diabetes and others. The main route for Nrf2 activity regulation is via interactions with the Keap1 protein. Under the normoxia the Keap1 binds the Nrf2 and targets it to the proteasomal degradation, while the Keap1 is regenerated. Upon oxidative stress the interactions between Nrf2 and Keap1 are interrupted and the Nrf2 activates the transcription of the protective genes. Currently, the Nrf2 system activation is considered as a powerful cytoprotective strategy for treatment of different pathologies, which pathogenesis relies on oxidative stress including viral diseases of pivotal importance such as COVID-19. The implementation of this strategy is accomplished mainly through the inactivation of the Keap1 "guardian" function. Two approaches are now developing: the Keap1 modification via electrophilic agents, which leads to the Nrf2 release, and direct interruption of the Nrf2:Keap1 protein-protein interactions (PPI). Because of theirs chemical structure, the Nrf2 electrophilic inducers could non-specifically interact with others cellular proteins leading to undesired effects. Whereas the non-electrophilic inhibitors of the Nrf2:Keap1 PPI could be more specific, thereby widening the therapeutic window. Show less
📄 PDF DOI: 10.1016/j.lfs.2021.120111
ROS amino-acid
Alatrash N, Issa FH, Bawazir NS +8 more · 2019 · Chemical Science · Royal Society of Chemistry · added 2026-05-01
Treatment of malignant and non-malignant cultured human cell lines with a cytotoxic IC50 dose of ∼2 μM tris(4,7-diphenyl-1,10-phenanthroline)ruthenium(ii) chloride (RPC2) retards or Show more
Treatment of malignant and non-malignant cultured human cell lines with a cytotoxic IC50 dose of ∼2 μM tris(4,7-diphenyl-1,10-phenanthroline)ruthenium(ii) chloride (RPC2) retards or arrests microtubule motion as tracked by visualizing fluorescently-tagged microtubule plus end-tracking proteins. Immunofluorescent microscopic images of the microtubules in fixed cells show substantial changes to cellular microtubule network and to overall cell morphology upon treatment with RPC2. Flow cytometry with MCF7 and H358 cells reveals only minor elevations of the number of cells in G2/M phase, suggesting that the observed cytotoxicity is not tied to mitotic arrest. In vitro studies with purified tubulin reveal that RPC2 acts to promote tubulin polymerization and when imaged by electron microscopy, these microtubules look normal in appearance. Isothermal titration calorimetry measurements show an associative binding constant of 4.8 × 106 M-1 for RPC2 to preformed microtubules and support a 1 : 1 RPC2 to tubulin dimer stoichiometry. Competition experiments show RPC2 does not compete for the taxane binding site. Consistent with this tight binding, over 80% of the ruthenium in treated cells is co-localized with the cytoskeletal proteins. These data support RPC2 acting as an in vivo microtubule stabilizing agent and sharing many similarities with cells treated with paclitaxel. Show less
📄 PDF DOI: 10.1039/C9SC05671H
Biometal
Malik MA, Raza MK, Dar OA +5 more · 2019 · Bioorganic Chemistry · Elsevier · added 2026-05-01
Development of new chemotherapeutic agents to treat microbial infections and recurrent cancers is of pivotal importance. Metal based drugs particularly ruthenium complexes have the uniqueness and desi Show more
Development of new chemotherapeutic agents to treat microbial infections and recurrent cancers is of pivotal importance. Metal based drugs particularly ruthenium complexes have the uniqueness and desired properties that make them suitable candidates for the search of potential chemotherapeutic agents. In this study, two mixed ligand Ru(III) complexes [Ru(Cl)2(SB)(Phen] (RC-1) and [Ru(Cl)2(SB)(Bipy)] (RC-2) were synthesised and characterized by elemental analysis, IR, UV-Vis, 1H, 13C NMR spectroscopic techniques and their molecular structure was confirmed by X-ray crystallography. Antibacterial activity evaluation against two Gram-positive (S. pneumonia and E. faecalis) and four Gram-negative strains (P. aurogenosa, K. pneumoniae, S. enterica, and E. coli) revealed their moderate antibacterial activity with MIC value of ≥250 μg/mL. Anticancer activity evaluation against a non-small lung cancer cell line (H1299) revealed the tremendous anticancer activity of these complexes which was further validated by DNA binding and docking results. DNA binding profile of the complexes studied by UV-Visible and fluorescence spectroscopy showed an intercalative binding mode with CT-DNA and an intrinsic binding constant in the range of 3.481-1.015× 105 M-1. Both the complexes were also found to exert weak toxicity to human erythrocytes by haemolytic assay compared to cisplatin. Potential of these complexes as anticancer agents will be further delineated by in vivo studies. Show less
📄 PDF DOI: 10.1016/j.bioorg.2019.03.080
Biometal
Boubakri L, Chakchouk-Mtibaa A, Al-Ayed AS +7 more · 2019 · RSC Advances · Royal Society of Chemistry · added 2026-05-01
A series of ruthenium(ii) complexes with N-heterocyclic carbene ligands were successfully synthesized by transmetalation reactions between silver(i) N-heterocyclic carbene complexes and [RuCl2Show more
A series of ruthenium(ii) complexes with N-heterocyclic carbene ligands were successfully synthesized by transmetalation reactions between silver(i) N-heterocyclic carbene complexes and [RuCl2(p-cymene)]2 in dichloromethane under Ar conditions. All new compounds were characterized by spectroscopic and analytical methods. These ruthenium(ii)-NHC complexes were found to be efficient precatalysts for the transfer hydrogenation of ketones by using 2-propanol as the hydrogen source in the presence of KOH as a co-catalyst. The antibacterial activity of ruthenium N-heterocyclic carbene complexes 3a-f was measured by disc diffusion method against Gram positive and Gram-negative bacteria. Compounds 3d exhibited potential antibacterial activity against five bacterial species among the six used as indicator cells. The product 3e inhibits the growth of all the six tested microorganisms. Moreover, the antioxidant activity determination of these complexes 3a-f, using 2,2-diphenyl-1-picrylhydrazyl (DPPH) and 2,2'-azinobis-3-ethylbenzothiazoline-6-sulphonic acid (ABTS) as reagent, showed that compounds 3b and 3d possess DPPH and ABTS antiradical activities. From a concentration of 1 mg ml-1, these two complexes presented a similar scavenging activity to that of the two used controls gallic acid (GA) and butylated hydroxytoluene (BHT). From a concentration of 10 mg ml-1, the percentage inhibition of complexes 3b and 3d was respectively 70% and 90%. In addition, these two Ru-NHC complexes exhibited antifungal activity against Candida albicans. Investigation of the anti-acetylcholinesterase activity of the studied complexes showed that compounds 3a, 3b, 3d and 3e exhibited good activity at 100 μg ml-1 and product 3d is the most active. In a cytotoxicity study the complexes 3 were evaluated against two human cancer cell lines MDA-MB-231 and MCF-7. Both 3d and 3e complexes were found to be active against the tested cell lines showing comparable activity with examples in the literature. Show less
📄 PDF DOI: 10.1039/c9ra05605j
Biometal
Richter S, Singh S, Draca D +7 more · 2016 · Dalton Transactions · Royal Society of Chemistry · added 2026-05-01
A series of Ru(II) arene complexes of mono- and bidentate N-donor ligands with carboxyl or ester groups and chlorido ancillary ligands were synthesised and structurally characterised. The complexes ha Show more
A series of Ru(II) arene complexes of mono- and bidentate N-donor ligands with carboxyl or ester groups and chlorido ancillary ligands were synthesised and structurally characterised. The complexes have a distorted tetrahedral piano-stool geometry. The binding interaction was studied with calf thymus DNA (CT-DNA) by absorption titration, viscosity measurement, thermal melting, circular dichroism, ethidium bromide displacement assay and DNA cleavage of plasmid DNA (pBR322), investigated by gel electrophoresis. The dichlorido complexes bind covalently to DNA in the dark, similar to cisplatin, while the monochlorido complexes bind covalently on irradiation, similar to cisplatin analogues. The compounds are selectively cytotoxic against several tumour cell lines and show specific nonlinear correlation between dose and activity. This phenomenon is closely related to their potential to act preferentially as inhibitors of cell division. Show less
📄 PDF DOI: 10.1039/C6DT01782G
Biometal
Cardoso CR, de Aguiar I, Camilo MR +6 more · 2012 · Dalton Transactions · Royal Society of Chemistry · added 2026-05-01
The monodentate cis-[Ru(phen)(2)(hist)(2)](2+)1R and the bidentate cis-[Ru(phen)(2)(hist)](2+)2A complexes were prepared and characterized using spectroscopic ((1)H, ((1)H-(1)H)COSY and ((1)H-(13)C)HS Show more
The monodentate cis-[Ru(phen)(2)(hist)(2)](2+)1R and the bidentate cis-[Ru(phen)(2)(hist)](2+)2A complexes were prepared and characterized using spectroscopic ((1)H, ((1)H-(1)H)COSY and ((1)H-(13)C)HSQC NMR, UV-vis, luminescence) techniques. The complexes presented absorption and emission in the visible region, as well as a tri-exponential emission decay. The complexes are soluble in aqueous and non-aqueous solution with solubility in a buffer solution of pH 7.4 of 1.14 × 10(-3) mol L(-1) for (1R + 2A) and 6.43 × 10(-4) mol L(-1) for 2A and lipophilicity measured in an aqueous-octanol solution of -1.14 and -0.96, respectively. Photolysis in the visible region in CH(3)CN converted the starting complexes into cis-[Ru(phen)(2)(CH(3)CN)(2)](2+). Histamine photorelease was also observed in pure water and in the presence of BSA (1.0 × 10(-6) mol L(-1)). The bidentate coordination of the histamine to the ruthenium center in relation to the monodentate coordination increased the photosubstitution quantum yield by a factor of 3. Pharmacological studies showed that the complexes present a moderate inhibition of AChE with an IC(50) of 21 μmol L(-1) (referred to risvagtini, IC(50) 181 μmol L(-1) and galantamine IC(50) 0.006 μmol L(-1)) with no appreciable cytotoxicity toward to the HeLa cells (50% cell viability at 925 μmol L(-1)). Cell uptake of the complexes into HeLa cells was detected by fluorescence confocal microscopy. Overall, the observation of a luminescent complex that penetrates the cell wall and has low cytotoxicity, but is reactive photochemically, releasing histamine when irradiated with visible light, are interesting features for application of these complexes as phototherapeutic agents. Show less
📄 PDF DOI: 10.1039/c2dt12136k
Biometal