👤 P Emsley

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Also published as: H. C. A. Emsley,
articles
C. Crivelli, S. Garcia-Madrona, M. Gil-Minguez +428 more · 2024 · Frontiers in Neuroscience · Frontiers · added 2026-04-20
C. Crivelli, S. Garcia-Madrona, M. Gil-Minguez, R. Lujan, A. Almeida, S. Moncada, J. P. Bolanos, C. Angebault, J. Fauconnier, S. Patergnani, J. Rieusset, A. Danese, C. A. Affortit, A. Ardalan, S. Sowlati-Hashjin, H. Oduwoye, S. O. Uwumarenogie, M. Karttunen, M. D. Smith, A. Atlante, G. Amadoro, V. Latina, D. Valenti, M. Belanger, I. Allaman, P. J. Magistretti, K. F. Bell, B. Al-Mubarak, J. H. Fowler, P. S. Baxter, K. Gupta, T. Tsujita, A. M. Bertholet, A. M. Natale, P. Bisignano, J. Suzuki, A. Fedorenko, J. Hamilton, C. Bienboire-Frosini, D. Wang, M. Marcet-Rius, D. Villanueva-Garcia, A. Gazzano, A. Dominguez-Oliva, M. Bienengraeber, K. S. Echtay, M. Klingenberg, C. Bionda, J. Portoukalian, D. Schmitt, C. Rodriguez-Lafrasse, D. Ardail, M. Bozluolcay, G. Andican, S. Firtina, G. Erkol, D. Konukoglu, R. D. Burgoyne, D. A. Butterfield, B. Halliwell, M. Cater, S. M. Holter, K. A. Chamberlain, N. Huang, Y. Xie, F. LiCausi, S. Li, Y. Li, S. L. Chan, D. Liu, G. A. Kyriazis, P. Bagsiyao, X. Ouyang, M. P. Mattson, W. Chen, J. Yang, S. Chen, H. Xiang, H. Liu, D. Lin, Z. Chen, C. Zhong, I. Cho, G. J. Hwang, J. H. Cho, H. O. Song, H. E. Ji, S. Yang, A. C. Chu, P. W. Ho, K. H. Kwok, J. W. Ho, K. H. Chan, H. F. Liu, E. H. Corder, A. M. Saunders, W. J. Strittmatter, D. E. Schmechel, P. C. Gaskell, G. W. Small, S. M. Crivelli, Z. Quadri, H. J. Vekaria, Z. Zhu, P. Tripathi, A. Elsherbini, J. Cummings, Y. Zhou, G. Lee, K. Zhong, J. Fonseca, F. Cheng, C. H. Davis, K. Y. Kim, E. A. Bushong, E. A. Mills, D. Boassa, T. Shih, S. M. de la Monte, J. R. Wands, L. E. de Vries, A. Jongejan, J. Monteiro Fortes, R. Balesar, A. J. M. Rozemuller, P. D. Moerland, G. A. Dienel, D. L. Rothman, R. Domingues, C. Pereira, M. T. Cruz, A. Silva, R. Dringen, J. M. Gutterer, J. Hirrlinger, H. H. Hoepken, T. Minich, C. Ruedig, A. Lajtha, G. E. Gibson, R. H. Du, F. F. Wu, M. Lu, X. D. Shu, J. H. Ding, G. Wu, E. Winkler, J. Fortea, J. Pegueroles, D. Alcolea, O. Belbin, O. Dols-Icardo, L. Vaque-Alcazar, P. Garcia-Nogales, K. D. Garlid, M. Jaburek, P. Jezek, D. E. Orosz, M. Modriansky, S. Vassanelli, K. N. Green, H. Khashwji, T. Estrada, F. M. LaFerla, J. Grundlingh, P. I. Dargan, M. El-Zanfaly, D. M. Wood, A. Gustavsson, N. Norton, T. Fast, L. Frolich, J. Georges, D. Holzapfel, J. N. Guzman, J. Sanchez-Padilla, D. Wokosin, J. Kondapalli, E. Ilijic, P. T. Schumacker, A. Habas, J. Hahn, X. Wang, M. Margeta, P. Hanak, K. Hayakawa, E. Esposito, Y. Terasaki, Y. Liu, C. Xing, A. Herrero-Mendez, E. Fernandez, C. Maestre, D. H. So, Z. H. Tse, H. M. Tse, D. C. Yiu, W. Y. Zhang, T. Hoang, M. Kuljanin, M. Jelokhani-Niaraki, K. A. Hogan, C. C. S. Chini, E. N. Chini, N. Hu, Y. Fu, W. F. Li, X. R. Yang, M. Cao, F. F. Li, S. G. Huang, M. O. Isei, M. Crockett, E. Chen, J. Rodwell-Bullock, T. Caroll, P. A. Girardi, M. V. Ivanova, F. R. McSorley, G. Krnac, H. T. Jacobs, D. Jiang, H. Lu, D. Jimenez-Blasco, P. Santofimia-Castano, A. Gonzalez, Y. Jing, Y. Niu, C. Liu, K. Zen, D. Li, J. M. Johnson, A. D. Peterlin, E. Balderas, E. G. Sustarsic, J. A. Maschek, M. J. Lang, S. M. Joksimovic, P. Eggan, Y. Izumi, S. L. Joksimovic, V. Tesic, R. M. Dietz, S. M. Ghodsi, J. A. Heinsbroek, J. E. Orfila, N. Busquet, B. Kaltschmidt, M. Uherek, B. Volk, P. A. Baeuerle, C. Kaltschmidt, Y. Kang, L. Chen, D. Kapogiannis, K. I. Avgerinos, B. M. Kenwood, J. L. Weaver, A. Bajwa, I. K. Poon, F. L. Byrne, B. A. Murrow, E. Klotzsch, A. Smorodchenko, L. Lofler, R. Moldzio, E. Parkinson, G. J. Schutz, N. Kyrtata, H. C. A. Emsley, O. Sparasci, L. M. Parkes, B. R. Dickie, Y. Lee, B. M. Morrison, S. Lengacher, M. H. Farah, P. N. Hoffman, S. A. Liddelow, K. A. Guttenplan, L. E. Clarke, F. C. Bennett, C. J. Bohlen, L. Schirmer, N. C. de Souza-Pinto, J. R. Slevin, R. P. Wersto, M. Zhan, J. Y. Chatton, M. Manczak, M. J. Calkins, P. H. Reddy, W. Mao, X. X. Yu, A. Zhong, W. Li, J. Brush, S. W. Sherwood, A. Montesanto, P. Crocco, M. Anfossi, N. Smirne, G. Puccio, R. Colao, S. Moriguchi, N. Shioda, Y. Yamamoto, H. Tagashira, K. Fukunaga, H. Morton, S. Kshirsagar, E. Orlov, L. E. Bunquin, N. Sawant, L. Boleng, L. Mosconi, R. D. Andrews, D. C. Matthews, T. Y. Nakamura, S. Nakao, S. Wakabayashi, K. F. Neumann, L. Rojo, L. P. Navarrete, G. Farias, P. Reyes, R. B. Maccioni, D. G. Nicholls, S. Oddo, A. Caccamo, J. D. Shepherd, M. P. Murphy, T. E. Golde, R. Kayed, D. M. A. Oliver, W. R. Pearson, L. Pellerin, A. K. Bouzier-Sore, A. Aubert, S. Serres, M. Merle, R. Costalat, H. Perreten Lambert, M. Zenger, G. Azarias, R. J. Perry, D. Zhang, X. M. Zhang, J. L. Boyer, G. I. Shulman, C. Petersen, M. D. Nielsen, E. S. Andersen, A. L. Basse, M. S. Isidor, L. K. Markussen, T. Philips, J. D. Rothstein, C. Poetschke, J. Duda, J. Benkert, E. Dragicevic, T. P. Snutch, J. Striessnig, J. A. Pradeepkiran, R. A. Rice, N. C. Berchtold, C. W. Cotman, N. Rosenberg, M. Reva, F. Binda, L. Restivo, P. Depierre, J. Puyal, J. J. Ruprecht, E. R. S. Kunji, A. S. Saab, I. D. Tzvetanova, K. A. Nave, I. D. Tzvetavona, A. Trevisiol, S. Baltan, P. Dibaj, K. Kusch, A. Serrano-Pozo, Z. Li, A. Noori, H. N. Nguyen, A. Mezlini, L. Li, M. Sheridan, B. Ogretmen, C. Simons, N. Deuter, O. Pongs, T. Schneider, A. Rupprecht, I. Sarilova, O. Ninnemann, A. U. Brauer, K. Franke, G. E. Stutzmann, I. Smith, I. Parker, R. H. Swerdlow, R. Thangavel, D. Kempuraj, S. Zaheer, S. Raikwar, M. E. Ahmed, G. P. Selvakumar, B. Vaccari-Cardoso, M. Antipina, A. G. Teschemacher, S. Kasparov, B. R. Villa, A. G. George, T. E. Shutt, P. G. Sullivan, J. M. Rho, G. C. Teskey, A. A. Willette, B. B. Bendlin, E. J. Starks, A. C. Birdsill, S. C. Johnson, B. T. Christian, S. Q. Xu, X. D. Yang, Y. W. Qian, Q. Xiao Show less
The brain’s high demand for energy necessitates tightly regulated metabolic pathways to sustain physiological activity. Glucose, the primary energy substrate, undergoes complex metabolic transformatio Show more
The brain’s high demand for energy necessitates tightly regulated metabolic pathways to sustain physiological activity. Glucose, the primary energy substrate, undergoes complex metabolic transformations, with mitochondria playing a central role in ATP production via oxidative phosphorylation. Dysregulation of this metabolic interplay is implicated in Alzheimer’s disease (AD), where compromised glucose metabolism, oxidative stress, and mitochondrial dysfunction contribute to disease progression. This review explores the intricate bioenergetic crosstalk between astrocytes and neurons, highlighting the function of mitochondrial uncoupling proteins (UCPs), particularly UCP4, as important regulators of brain metabolism and neuronal function. Predominantly expressed in the brain, UCP4 reduces the membrane potential in the inner mitochondrial membrane, thereby potentially decreasing the generation of reactive oxygen species. Furthermore, UCP4 mitigates mitochondrial calcium overload and sustains cellular ATP levels through a metabolic shift from mitochondrial respiration to glycolysis. Interestingly, the levels of the neuronal UCPs, UCP2, 4 and 5 are significantly reduced in AD brain tissue and a specific UCP4 variant has been associated to an increased risk of developing AD. Few studies modulating the expression of UCP4 in astrocytes or neurons have highlighted protective effects against neurodegeneration and aging, suggesting that pharmacological strategies aimed at activating UCPs, such as protonophoric uncouplers, hold promise for therapeutic interventions in AD and other neurodegenerative diseases. Despite significant advances, our understanding of UCPs in brain metabolism remains in its early stages, emphasizing the need for further research to unravel their biological functions in the brain and their therapeutic potential. Show less
📄 PDF DOI: 10.3389/fnins.2024.1483708
ROS amino-acid mitochondria review
R Fan, D De Stefani, A Raffaello +96 more · 2020 · Nature · Nature · added 2026-04-20
Mitochondria take up Ca 2+ through the mitochondrial calcium uniporter complex to regulate energy production, cytosolic Ca 2+ signaling, and cell death 1 , 2 . In mammals, the uniporter complex (u Show more
Mitochondria take up Ca 2+ through the mitochondrial calcium uniporter complex to regulate energy production, cytosolic Ca 2+ signaling, and cell death 1 , 2 . In mammals, the uniporter complex (uniplex) contains four core components: the pore-forming MCU, gatekeeper MICU1 and MICU2, and an auxiliary EMRE subunit essential for Ca 2+ transport 3 – 8 . To prevent detrimental Ca 2+ overload, the activity of MCU must be tightly regulated by MICUs, which sense the changes in cytosolic Ca 2+ concentrations to switch MCU on and off 9 , 10 . Here, we report cryo-EM structures of human mitochondrial calcium uniporter holocomplex in inhibited and Ca 2+ -activated states. These structures define the architecture of this multi-component Ca 2+ uptake machinery and reveal the gating mechanism by which MICUs control uniporter activity. This work provides a framework for understanding regulated Ca 2+ uptake in mitochondria and lends clues to modulate uniporter activity for treating mitochondrial Ca 2+ overload-related diseases. Show less
no PDF DOI: 10.1038/s41586-020-2309-6
mitochondria
TE Fan, DR Pfeiffer, R Rizzuto +146 more · 2018 · Nature · Nature · added 2026-04-20
TE Fan, DR Pfeiffer, R Rizzuto, D De Stefani, A Raffaello, C Mammucari, G Szabadkai, MR Duchen, HF Deluca, GW Engstrom, FD Vasington, JV Murphy, Y Kirichok, G Krapivinsky, DE Clapham, T Pozzan, M Brini, M Murgia, M Giacomello, JM Baughman, E Teardo, I Szabo, D Chaudhuri, Y Sancak, VK Mootha, E Kovacs-Bogdan, SK Lee, G Csordas, K Mallilankaraman, KJ Kamer, Z Grabarek, F Perocchi, JC Liu, M Patron, MF Tsai, DJ Artiga, SA Abiria, D Tomar, AG Bick, SE Calvo, G Gherardi, K Oxenoid, JX Song, X Liu, PF Zhai, JJ Huang, L Lu, E Shigetomi, S Kracun, MV Sofroniew, BS Khakh, XW Hou, L Pedi, MM Diver, SB Long, W Yang, HW Lee, H Hellinga, JJ Yang, K Saotome, AK Singh, MV Yelshanskaya, AI Sobolevsky, ZW Dong, Y Lee, DM Arduino, MF Liao, EH Cao, D Julius, YF Cheng, DA Doyle, Z Yan, MP Rosconi, E Gouaux, G Fan, R Zalk, RG Efremov, A Leitner, R Aebersold, S Raunser, J Wu, L Tang, S Zhu, S Doublie, SN Ho, HD Hunt, RM Horton, JK Pullen, LR Pease, TS Walter, E Pardon, C McMahon, G Chao, W Kabsch, Z Otwinowski, W Minor, AJ McCoy, PD Adams, P Emsley, B Lohkamp, WG Scott, K Cowtan, T Pape, TR Schneider, G Bricogne, VB Chen, OS Smart, JG Neduvelil, X Wang, BA Wallace, MS Sansom, YN Tallini, H Felle, JS Porter, CL Slayman, HR Kaback, LM Veenhoff, B Poolman, J Zhang, Y Feng, M Forgac, L Feng, EB Campbell, Y Hsiung, R Mackinnon, DS Booth, A Avila-Sakar, Y Cheng, X Li, S Zheng, DA Agard, DN Mastronarde, W Mi, SQ Zheng, A Rohou, N Grigorieff, H Ru, SH Scheres, XC Bai, E Rajendra, G Yang, Y Shi, A Kucukelbir, FJ Sigworth, HD Tagare, D Lyumkis, AF Brilot, DL Theobald, EF Pettersen Show less
Mitochondrial calcium uptake plays critical roles in regulating ATP production, intracellular calcium signaling, and cell death. This uptake is mediated by a highly selective calcium channel called th Show more
Mitochondrial calcium uptake plays critical roles in regulating ATP production, intracellular calcium signaling, and cell death. This uptake is mediated by a highly selective calcium channel called the mitochondrial calcium uniporter. Here, we determined the structures of the pore-forming MCU proteins by X-ray crystallography and single-particle cryo-electron microscopy. The stoichiometry, overall architecture, and individual subunit structure differed markedly from those in the recent nuclear magnetic resonance structure of the Caenorhabditis elegans MCU. In our studies, we observed a dimer-of-dimer architecture across species and chemical environments, which was corroborated by biochemical experiments. Structural analyses and functional characterizations uncovered the roles of critical residues in the pore. These results reveal a new ion channel architecture, provide insights into calcium coordination, selectivity, and conduction, and establish a structural framework for understanding the mechanism of mitochondrial calcium uniporter function. Show less
no PDF DOI: 10.1038/s41586-018-0330-9
NMR X-ray mitochondria