👤 Valentina Vivo

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4
Articles
3
Name variants
Also published as: Immaculata De Vivo, Marco De Vivo,
articles
Claudia Fumarola, Daniele Cretella, Silvia La Monica +14 more · 2026 · Oncotarget · Impact Journals · added 2026-04-24
📄 PDF DOI: 10.18632/oncotarget.28844
FGFR1
Giuseppina La Sala, Christopher Pfleger, Helena Käck +11 more · 2023 · Chemical science · Royal Society of Chemistry · added 2026-04-24
Understanding allosteric regulation in biomolecules is of great interest to pharmaceutical research and computational methods emerged during the last decades to characterize allosteric coupling. Howev Show more
Understanding allosteric regulation in biomolecules is of great interest to pharmaceutical research and computational methods emerged during the last decades to characterize allosteric coupling. However, the prediction of allosteric sites in a protein structure remains a challenging task. Here, we integrate local binding site information, coevolutionary information, and information on dynamic allostery into a structure-based three-parameter model to identify potentially hidden allosteric sites in ensembles of protein structures with orthosteric ligands. When tested on five allosteric proteins (LFA-1, p38-α, GR, MAT2A, and BCKDK), the model successfully ranked all known allosteric pockets in the top three positions. Finally, we identified a novel druggable site in MAT2A confirmed by X-ray crystallography and SPR and a hitherto unknown druggable allosteric site in BCKDK validated by biochemical and X-ray crystallography analyses. Our model can be applied in drug discovery to identify allosteric pockets. Show less
📄 PDF DOI: 10.1039/d2sc06272k
BCKDK
Nilufer Rahmioglu, Sally Mortlock, Marzieh Ghiasi +135 more · 2023 · Nature genetics · Nature · added 2026-04-24
Nilufer Rahmioglu, Sally Mortlock, Marzieh Ghiasi, Peter L Møller, Lilja Stefansdottir, Geneviève Galarneau, Constance Turman, Rebecca Danning, Matthew H Law, Yadav Sapkota, Paraskevi Christofidou, Sini Skarp, Ayush Giri, Karina Banasik, Michal Krassowski, Maarja Lepamets, Błażej Marciniak, Margit Nõukas, Danielle Perro, Eeva Sliz, Marta Sobalska-Kwapis, Gudmar Thorleifsson, Nura F Topbas-Selcuki, Allison Vitonis, David Westergaard, Ragnheidur Arnadottir, Kristoffer S Burgdorf, Archie Campbell, Cecilia S K Cheuk, Caterina Clementi, James Cook, Immaculata De Vivo, Amy DiVasta, O Dorien, Jacqueline F Donoghue, Todd Edwards, Pierre Fontanillas, Jenny N Fung, Reynir T Geirsson, Jane E Girling, Paivi Harkki, Holly R Harris, Martin Healey, Oskari Heikinheimo, Sarah Holdsworth-Carson, Isabel C Hostettler, Henry Houlden, Sahar Houshdaran, Juan C Irwin, Marjo-Riitta Jarvelin, Yoichiro Kamatani, Stephen H Kennedy, Ewa Kepka, Johannes Kettunen, Michiaki Kubo, Bartosz Kulig, Venla Kurra, Hannele Laivuori, Marc R Laufer, Cecilia M Lindgren, Stuart MacGregor, Massimo Mangino, Nicholas G Martin, Charoula Matalliotaki, Michail Matalliotakis, Alison D Murray, Anne Ndungu, Camran Nezhat, Catherine M Olsen, Jessica Opoku-Anane, Sandosh Padmanabhan, Manish Paranjpe, Maire Peters, Grzegorz Polak, David J Porteous, Joseph Rabban, Kathyrn M Rexrode, Hanna Romanowicz, Merli Saare, Liisu Saavalainen, Andrew J Schork, Sushmita Sen, Amy L Shafrir, Anna Siewierska-Górska, Marcin Słomka, Blair H Smith, Beata Smolarz, Tomasz Szaflik, Krzysztof Szyłło, Atsushi Takahashi, Kathryn L Terry, Carla Tomassetti, Susan A Treloar, Arne Vanhie, Katy Vincent, Kim C Vo, David J Werring, Eleftheria Zeggini, Maria I Zervou, DBDS Genomic Consortium, FinnGen Study, FinnGen Endometriosis Taskforce, Celmatix Research Team, 23andMe Research Team, Sosuke Adachi, Julie E Buring, Paul M Ridker, Thomas D'Hooghe, George N Goulielmos, Dharani K Hapangama, Caroline Hayward, Andrew W Horne, Siew-Kee Low, Hannu Martikainen, Daniel I Chasman, Peter A W Rogers, Philippa T Saunders, Marina Sirota, Tim Spector, Dominik Strapagiel, Joyce Y Tung, David C Whiteman, Linda C Giudice, Digna R Velez-Edwards, Outi Uimari, Peter Kraft, Andres Salumets, Dale R Nyholt, Reedik Mägi, Kari Stefansson, Christian M Becker, Piraye Yurttas-Beim, Valgerdur Steinthorsdottir, Mette Nyegaard, Stacey A Missmer, Grant W Montgomery, Andrew P Morris, Krina T Zondervan Show less
Endometriosis is a common condition associated with debilitating pelvic pain and infertility. A genome-wide association study meta-analysis, including 60,674 cases and 701,926 controls of European and Show more
Endometriosis is a common condition associated with debilitating pelvic pain and infertility. A genome-wide association study meta-analysis, including 60,674 cases and 701,926 controls of European and East Asian descent, identified 42 genome-wide significant loci comprising 49 distinct association signals. Effect sizes were largest for stage 3/4 disease, driven by ovarian endometriosis. Identified signals explained up to 5.01% of disease variance and regulated expression or methylation of genes in endometrium and blood, many of which were associated with pain perception/maintenance (SRP14/BMF, GDAP1, MLLT10, BSN and NGF). We observed significant genetic correlations between endometriosis and 11 pain conditions, including migraine, back and multisite chronic pain (MCP), as well as inflammatory conditions, including asthma and osteoarthritis. Multitrait genetic analyses identified substantial sharing of variants associated with endometriosis and MCP/migraine. Targeted investigations of genetically regulated mechanisms shared between endometriosis and other pain conditions are needed to aid the development of new treatments and facilitate early symptomatic intervention. Show less
📄 PDF DOI: 10.1038/s41588-023-01323-z
MLLT10
Andrea D Coviello, Robin Haring, Melissa Wellons +96 more · 2012 · PLoS genetics · PLOS · added 2026-04-24
Andrea D Coviello, Robin Haring, Melissa Wellons, Dhananjay Vaidya, Terho Lehtimäki, Sarah Keildson, Kathryn L Lunetta, Chunyan He, Myriam Fornage, Vasiliki Lagou, Massimo Mangino, N Charlotte Onland-Moret, Brian Chen, Joel Eriksson, Melissa Garcia, Yong Mei Liu, Annemarie Koster, Kurt Lohman, Leo-Pekka Lyytikäinen, Ann-Kristin Petersen, Jennifer Prescott, Lisette Stolk, Liesbeth Vandenput, Andrew R Wood, Wei Vivian Zhuang, Aimo Ruokonen, Anna-Liisa Hartikainen, Anneli Pouta, Stefania Bandinelli, Reiner Biffar, Georg Brabant, David G Cox, Yuhui Chen, Steven Cummings, Luigi Ferrucci, Marc J Gunter, Susan E Hankinson, Hannu Martikainen, Albert Hofman, Georg Homuth, Thomas Illig, John-Olov Jansson, Andrew D Johnson, David Karasik, Magnus Karlsson, Johannes Kettunen, Douglas P Kiel, Peter Kraft, Jingmin Liu, Östen Ljunggren, Mattias Lorentzon, Marcello Maggio, Marcello R P Markus, Dan Mellström, Iva Miljkovic, Daniel Mirel, Sarah Nelson, Laure Morin Papunen, Petra H M Peeters, Inga Prokopenko, Leslie Raffel, Martin Reincke, Alex P Reiner, Kathryn Rexrode, Fernando Rivadeneira, Stephen M Schwartz, David Siscovick, Nicole Soranzo, Doris Stöckl, Shelley Tworoger, André G Uitterlinden, Carla H van Gils, Ramachandran S Vasan, H-Erich Wichmann, Guangju Zhai, Shalender Bhasin, Martin Bidlingmaier, Stephen J Chanock, Immaculata De Vivo, Tamara B Harris, David J Hunter, Mika Kähönen, Simin Liu, Pamela Ouyang, Tim D Spector, Yvonne T van der Schouw, Jorma Viikari, Henri Wallaschofski, Mark I McCarthy, Timothy M Frayling, Anna Murray, Steve Franks, Marjo-Riitta Järvelin, Frank H de Jong, Olli Raitakari, Alexander Teumer, Claes Ohlsson, Joanne M Murabito, John R B Perry Show less
Sex hormone-binding globulin (SHBG) is a glycoprotein responsible for the transport and biologic availability of sex steroid hormones, primarily testosterone and estradiol. SHBG has been associated wi Show more
Sex hormone-binding globulin (SHBG) is a glycoprotein responsible for the transport and biologic availability of sex steroid hormones, primarily testosterone and estradiol. SHBG has been associated with chronic diseases including type 2 diabetes (T2D) and with hormone-sensitive cancers such as breast and prostate cancer. We performed a genome-wide association study (GWAS) meta-analysis of 21,791 individuals from 10 epidemiologic studies and validated these findings in 7,046 individuals in an additional six studies. We identified twelve genomic regions (SNPs) associated with circulating SHBG concentrations. Loci near the identified SNPs included SHBG (rs12150660, 17p13.1, p = 1.8 × 10(-106)), PRMT6 (rs17496332, 1p13.3, p = 1.4 × 10(-11)), GCKR (rs780093, 2p23.3, p = 2.2 × 10(-16)), ZBTB10 (rs440837, 8q21.13, p = 3.4 × 10(-09)), JMJD1C (rs7910927, 10q21.3, p = 6.1 × 10(-35)), SLCO1B1 (rs4149056, 12p12.1, p = 1.9 × 10(-08)), NR2F2 (rs8023580, 15q26.2, p = 8.3 × 10(-12)), ZNF652 (rs2411984, 17q21.32, p = 3.5 × 10(-14)), TDGF3 (rs1573036, Xq22.3, p = 4.1 × 10(-14)), LHCGR (rs10454142, 2p16.3, p = 1.3 × 10(-07)), BAIAP2L1 (rs3779195, 7q21.3, p = 2.7 × 10(-08)), and UGT2B15 (rs293428, 4q13.2, p = 5.5 × 10(-06)). These genes encompass multiple biologic pathways, including hepatic function, lipid metabolism, carbohydrate metabolism and T2D, androgen and estrogen receptor function, epigenetic effects, and the biology of sex steroid hormone-responsive cancers including breast and prostate cancer. We found evidence of sex-differentiated genetic influences on SHBG. In a sex-specific GWAS, the loci 4q13.2-UGT2B15 was significant in men only (men p = 2.5 × 10(-08), women p = 0.66, heterogeneity p = 0.003). Additionally, three loci showed strong sex-differentiated effects: 17p13.1-SHBG and Xq22.3-TDGF3 were stronger in men, whereas 8q21.12-ZBTB10 was stronger in women. Conditional analyses identified additional signals at the SHBG gene that together almost double the proportion of variance explained at the locus. Using an independent study of 1,129 individuals, all SNPs identified in the overall or sex-differentiated or conditional analyses explained ~15.6% and ~8.4% of the genetic variation of SHBG concentrations in men and women, respectively. The evidence for sex-differentiated effects and allelic heterogeneity highlight the importance of considering these features when estimating complex trait variance. Show less
📄 PDF DOI: 10.1371/journal.pgen.1002805
JMJD1C