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Human Induced Pluripotent Stem Cell–Derived Podocytes Mature Into Vascularized Glomeruli Upon Experimental Transplantation
BASIC RESEARCH www.jasn.org Human Induced Pluripotent Stem Cell–Derived Podocytes Mature into Vascularized Glomeruli upon Experimental Transplantation † Sazia Sharmin,* Atsuhiro Taguchi,* Yusuke Kaku,* Yasuhiro Yoshimura,* Tomoko Ohmori,* ‡ † ‡ Tetsushi Sakuma, Masashi Mukoyama, Takashi Yamamoto, Hidetake Kurihara,§ and | Ryuichi Nishinakamura* *Department of Kidney Development, Institute of Molecular Embryology and Genetics, and †Department of Nephrology, Faculty of Life Sciences, Kumamoto University, Kumamoto, Japan; ‡Department of Mathematical and Life Sciences, Graduate School of Science, Hiroshima University, Hiroshima, Japan; §Division of Anatomy, Juntendo University School of Medicine, Tokyo, Japan; and |Japan Science and Technology Agency, CREST, Kumamoto, Japan ABSTRACT Glomerular podocytes express proteins, such as nephrin, that constitute the slit diaphragm, thereby contributing to the filtration process in the kidney. Glomerular development has been analyzed mainly in mice, whereas analysis of human kidney development has been minimal because of limited access to embryonic kidneys. We previously reported the induction of three-dimensional primordial glomeruli from human induced pluripotent stem (iPS) cells. Here, using transcription activator–like effector nuclease-mediated homologous recombination, we generated human iPS cell lines that express green fluorescent protein (GFP) in the NPHS1 locus, which encodes nephrin, and we show that GFP expression facilitated accurate visualization of nephrin-positive podocyte formation in -
Open Thesis FINAL3.Pdf
THE PENNSYLVANIA STATE UNIVERSITY SCHREYER HONORS COLLEGE DEPARTMENT OF BIOLOGY THE IDENTIFICATION AND CHARACTERIZATION OF SUFU INTERACTING PROTEINS EMILY VALERIO SPRING 2013 A thesis submitted in partial fulfillment of the requirements for a baccalaureate degree in Biology with honors in Biology Reviewed and approved* by the following: Aimin Liu Associate Professor of Biology Thesis Supervisor Gong Chen Associate Professor of Biology Honors Adviser * Signatures are on file in the Schreyer Honors College. i ABSTRACT The Hedgehog (Hh) pathway, activated by a special family of proteins, is a prominent pathway in mammalian development and also in the formation of various cancers. When interacting with cells, Hh ligands are responsible for enhancing target Hh gene expression through the activation of Gli-transcriptional activators. Suppressor of Fused (Sufu) is a specific Gli-interacting protein that functions in negatively regulating Gli activity and by doing so, suppressing Gli-activated tumor formation. The extent of how Sufu functions is not yet understood in mammals. In an effort to identify proteins that may interact with Sufu in this pathway, over 50 candidate proteins were identified through a yeast-two hybrid screen. Through much background research, four particular proteins were selected due to their known function and location in the cell: ran-binding protein 9 (RanBP9), transmembrane 131-like precursor (T131L), COP9 signalosome complex subunit 1 isoform (Gps1), and hypothetical protein LOC67513. After performing co-immunoprecipitation assays, we confirmed interactions with T131L, Gps1 and LOC67513. These proteins have also been recognized to interact with both structural domains of Sufu, the N-terminal domain and C-terminal domain. -
New Breast Cancer Risk Variant Discovered at 10Q25 in East Asian Women
Published OnlineFirst May 15, 2013; DOI: 10.1158/1055-9965.EPI-12-1393 Cancer Epidemiology, Research Article Biomarkers & Prevention New Breast Cancer Risk Variant Discovered at 10q25 in East Asian Women Jiajun Shi1, Hyuna Sung2, Ben Zhang1, Wei Lu9, Ji-Yeob Choi2,5, Yong-Bing Xiang10, Mi Kyung Kim8,11, Motoki Iwasaki12, Jirong Long1, Bu-Tian Ji13, Sue K. Park2,3,5, Ying Zheng9, Shoichiro Tsugane12, Keun-Young Yoo3, Wenjing Wang9, Dong-Young Noh4,5, Wonshik Han4,5, Sung-Won Kim6, Min Hyuk Lee7, Jong Won Lee8, Jong-Young Lee14, Chen-Yang Shen15,16, Keitaro Matsuo17, Sei-Hyun Ahn8,11, Yu-Tang Gao10, Xiao Ou Shu1, Qiuyin Cai1, Daehee Kang2,3,5, and Wei Zheng1 Abstract Background: Recently, 41 new genetic susceptibility loci for breast cancer risk were identified in a genome- wide association study (GWAS) conducted in European descendants. Most of these risk variants have not been directly replicated in Asian populations. Methods: We evaluated nine of those nonreplication loci in East Asians to identify new risk variants for breast cancer in these regions. First, we analyzed single-nucleotide polymorphisms (SNP) in these regions using data from two GWAS conducted among Chinese and Korean women, including 5,083 cases and 4,376 controls (stage 1). In each region, we selected an SNP showing the strongest association with breast cancer risk for replication in an independent set of 7,294 cases and 9,404 controls of East Asian descents (stage 2). Logistic regression models were used to calculate adjusted ORs and 95% confidence intervals (CI) as a measure of the association of breast cancer risk and genetic variants. -
Discovery of a Molecular Glue That Enhances Uprmt to Restore
bioRxiv preprint doi: https://doi.org/10.1101/2021.02.17.431525; this version posted February 17, 2021. The copyright holder for this preprint (which was not certified by peer review) is the author/funder. All rights reserved. No reuse allowed without permission. Title: Discovery of a molecular glue that enhances UPRmt to restore proteostasis via TRKA-GRB2-EVI1-CRLS1 axis Authors: Li-Feng-Rong Qi1, 2 †, Cheng Qian1, †, Shuai Liu1, 2†, Chao Peng3, 4, Mu Zhang1, Peng Yang1, Ping Wu3, 4, Ping Li1 and Xiaojun Xu1, 2 * † These authors share joint first authorship Running title: Ginsenoside Rg3 reverses Parkinson’s disease model by enhancing mitochondrial UPR Affiliations: 1 State Key Laboratory of Natural Medicines, China Pharmaceutical University, 210009, Nanjing, Jiangsu, China. 2 Jiangsu Key Laboratory of Drug Discovery for Metabolic Diseases, China Pharmaceutical University, 210009, Nanjing, Jiangsu, China. 3. National Facility for Protein Science in Shanghai, Zhangjiang Lab, Shanghai Advanced Research Institute, Chinese Academy of Science, Shanghai 201210, China 4. Shanghai Science Research Center, Chinese Academy of Sciences, Shanghai, 201204, China. Corresponding author: Ping Li, State Key Laboratory of Natural Medicines, China Pharmaceutical University, 210009, Nanjing, Jiangsu, China. Email: [email protected], Xiaojun Xu, State Key Laboratory of Natural Medicines, Jiangsu Key Laboratory of Drug Discovery for Metabolic Diseases, China Pharmaceutical University, 210009, Nanjing, Jiangsu, China. Telephone number: +86-2583271203, E-mail: [email protected]. bioRxiv preprint doi: https://doi.org/10.1101/2021.02.17.431525; this version posted February 17, 2021. The copyright holder for this preprint (which was not certified by peer review) is the author/funder. -
Transcriptional Fates of Human-Specific Segmental Duplications in Brain
Downloaded from genome.cshlp.org on September 27, 2021 - Published by Cold Spring Harbor Laboratory Press Method Transcriptional fates of human-specific segmental duplications in brain Max L. Dougherty,1,7 Jason G. Underwood,1,2,7 Bradley J. Nelson,1 Elizabeth Tseng,2 Katherine M. Munson,1 Osnat Penn,1 Tomasz J. Nowakowski,3,4 Alex A. Pollen,5 and Evan E. Eichler1,6 1Department of Genome Sciences, University of Washington School of Medicine, Seattle, Washington 98195, USA; 2Pacific Biosciences (PacBio) of California, Incorporated, Menlo Park, California 94025, USA; 3Department of Anatomy, 4Department of Psychiatry, 5Department of Neurology, University of California, San Francisco, San Francisco, California 94158, USA; 6Howard Hughes Medical Institute, University of Washington, Seattle, Washington 98195, USA Despite the importance of duplicate genes for evolutionary adaptation, accurate gene annotation is often incomplete, in- correct, or lacking in regions of segmental duplication. We developed an approach combining long-read sequencing and hybridization capture to yield full-length transcript information and confidently distinguish between nearly identical genes/paralogs. We used biotinylated probes to enrich for full-length cDNA from duplicated regions, which were then am- plified, size-fractionated, and sequenced using single-molecule, long-read sequencing technology, permitting us to distin- guish between highly identical genes by virtue of multiple paralogous sequence variants. We examined 19 gene families as expressed in developing and adult human brain, selected for their high sequence identity (average >99%) and overlap with human-specific segmental duplications (SDs). We characterized the transcriptional differences between related paralogs to better understand the birth–death process of duplicate genes and particularly how the process leads to gene innovation. -
A Temporally Controlled Sequence of X-Chromosome Inactivation and Reactivation Defines Female Mouse in Vitro Germ Cells with Meiotic Potential
bioRxiv preprint doi: https://doi.org/10.1101/2021.08.11.455976; this version posted August 11, 2021. The copyright holder for this preprint (which was not certified by peer review) is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under aCC-BY-NC 4.0 International license. A temporally controlled sequence of X-chromosome inactivation and reactivation defines female mouse in vitro germ cells with meiotic potential Jacqueline Severino1†, Moritz Bauer1,9†, Tom Mattimoe1, Niccolò Arecco1, Luca Cozzuto1, Patricia Lorden2, Norio Hamada3, Yoshiaki Nosaka4,5,6, So Nagaoka4,5,6, Holger Heyn2, Katsuhiko Hayashi7, Mitinori Saitou4,5,6 and Bernhard Payer1,8* Abstract The early mammalian germ cell lineage is characterized by extensive epigenetic reprogramming, which is required for the maturation into functional eggs and sperm. In particular, the epigenome needs to be reset before parental marks can be established and then transmitted to the next generation. In the female germ line, reactivation of the inactive X- chromosome is one of the most prominent epigenetic reprogramming events, and despite its scale involving an entire chromosome affecting hundreds of genes, very little is known about its kinetics and biological function. Here we investigate X-chromosome inactivation and reactivation dynamics by employing a tailor-made in vitro system to visualize the X-status during differentiation of primordial germ cell-like cells (PGCLCs) from female mouse embryonic stem cells (ESCs). We find that the degree of X-inactivation in PGCLCs is moderate when compared to somatic cells and characterized by a large number of genes escaping full inactivation. -
Genetics of Distal Hereditary Motor Neuropathies
GENETICSOFDISTALHEREDITARY MOTOR NEUROPATHIES By alexander peter drew A thesis submitted for the Degree of Doctor of Philosophy Supervised by Professor Garth A. Nicholson Dr. Ian P. Blair Faculty of Medicine University of Sydney 2012 statement No part of the work described in this thesis has been submitted in fulfilment of the requirements for any other academic degree or qualification. Except where due acknowledgement has been made, all experimental work was performed by the author. Alexander Peter Drew CONTENTS acknowledgements ............................. i summary .................................... ii list of figures ................................ v list of tables ................................ viii acronyms and abbreviations ..................... xi publications ................................. xiv 1 literature review ........................... 1 1.1 Molecular genetics and mechanisms of disease in Distal Hereditary Motor Neuropathies . .1 1.1.1 Small heat shock protein family . .2 1.1.2 Dynactin 1 (DCTN1).....................9 1.1.3 Immunoglobulin mu binding protein 2 gene (IGHMBP2) 11 1.1.4 Senataxin (SETX)....................... 14 1.1.5 Glycyl-tRNA synthase (GARS)............... 16 1.1.6 Berardinelli-Seip congenital lipodystrophy 2 (SEIPIN) gene (BSCL2)......................... 18 1.1.7 ATPase, Cu2+-transporting, alpha polypeptide gene (ATP7A) 20 1.1.8 Pleckstrin homology domain-containing protein, G5 gene (PLEKHG5)........................... 21 1.1.9 Transient receptor potential cation channel, V4 gene (TRPV4) 22 1.1.10 DYNC1H1 ........................... 23 1.1.11 Clinical variability in dHMN . 24 1.1.12 Common disease mechanisms in dHMN . 29 2 general materials and methods ................. 32 2.1 General materials and reagents . 32 2.1.1 Reagents and Enzymes . 32 2.1.2 Equipment . 33 2.1.3 Plasticware . 33 2.2 Study participants . 34 2.3 DNA methods . -
Analysis of RNA Expression of Normal and Cancer Tissues Reveals High Correlation of COP9 Gene Expression with Respiratory Chain Complex Components Christina A
University of Kentucky UKnowledge Toxicology and Cancer Biology Faculty Toxicology and Cancer Biology Publications 12-1-2016 Analysis of RNA Expression of Normal and Cancer Tissues Reveals High Correlation of COP9 Gene Expression with Respiratory Chain Complex Components Christina A. Wicker University of Kentucky, [email protected] Tadahide Izumi University of Kentucky, [email protected] Right click to open a feedback form in a new tab to let us know how this document benefits oy u. Follow this and additional works at: https://uknowledge.uky.edu/toxicology_facpub Part of the Cancer Biology Commons, Cell Biology Commons, and the Medical Toxicology Commons Repository Citation Wicker, Christina A. and Izumi, Tadahide, "Analysis of RNA Expression of Normal and Cancer Tissues Reveals High Correlation of COP9 Gene Expression with Respiratory Chain Complex Components" (2016). Toxicology and Cancer Biology Faculty Publications. 56. https://uknowledge.uky.edu/toxicology_facpub/56 This Article is brought to you for free and open access by the Toxicology and Cancer Biology at UKnowledge. It has been accepted for inclusion in Toxicology and Cancer Biology Faculty Publications by an authorized administrator of UKnowledge. For more information, please contact [email protected]. Analysis of RNA Expression of Normal and Cancer Tissues Reveals High Correlation of COP9 Gene Expression with Respiratory Chain Complex Components Notes/Citation Information Published in BMC Genomics, v. 17, 983, p. 1-14. © The Author(s). 2016 This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. -
Whole Genome Sequencing Puts Forward Hypotheses on Metastasis Evolution and Therapy in Colorectal Cancer
ARTICLE DOI: 10.1038/s41467-018-07041-z OPEN Whole genome sequencing puts forward hypotheses on metastasis evolution and therapy in colorectal cancer Naveed Ishaque1,2,3, Mohammed L. Abba4,5, Christine Hauser4,5, Nitin Patil4,5, Nagarajan Paramasivam3,6, Daniel Huebschmann 3, Jörg Hendrik Leupold4,5, Gnana Prakash Balasubramanian2, Kortine Kleinheinz 3, Umut H. Toprak3, Barbara Hutter 2, Axel Benner7, Anna Shavinskaya4, Chan Zhou4,5, Zuguang Gu1,3, Jules Kerssemakers 3, Alexander Marx8, Marcin Moniuszko9, Miroslaw Kozlowski9, Joanna Reszec9, Jacek Niklinski9, Jürgen Eils3, Matthias Schlesner 3,10, Roland Eils 1,3,11, Benedikt Brors 2,12 & 1234567890():,; Heike Allgayer 4,5 Incomplete understanding of the metastatic process hinders personalized therapy. Here we report the most comprehensive whole-genome study of colorectal metastases vs. matched primary tumors. 65% of somatic mutations originate from a common progenitor, with 15% being tumor- and 19% metastasis-specific, implicating a higher mutation rate in metastases. Tumor- and metastasis-specific mutations harbor elevated levels of BRCAness. We confirm multistage progression with new components ARHGEF7/ARHGEF33. Recurrently mutated non-coding elements include ncRNAs RP11-594N15.3, AC010091, SNHG14,3’ UTRs of FOXP2, DACH2, TRPM3, XKR4, ANO5, CBL, CBLB, the latter four potentially dual protagonists in metastasis and efferocytosis-/PD-L1 mediated immunosuppression. Actionable metastasis- specific lesions include FAT1, FGF1, BRCA2, KDR, and AKT2-, AKT3-, and PDGFRA-3’ UTRs. Metastasis specific mutations are enriched in PI3K-Akt signaling, cell adhesion, ECM and hepatic stellate activation genes, suggesting genetic programs for site-specific colonization. Our results put forward hypotheses on tumor and metastasis evolution, and evidence for metastasis-specific events relevant for personalized therapy. -
A Chromosome-Centric Human Proteome Project (C-HPP) To
computational proteomics Laboratory for Computational Proteomics www.FenyoLab.org E-mail: [email protected] Facebook: NYUMC Computational Proteomics Laboratory Twitter: @CompProteomics Perspective pubs.acs.org/jpr A Chromosome-centric Human Proteome Project (C-HPP) to Characterize the Sets of Proteins Encoded in Chromosome 17 † ‡ § ∥ ‡ ⊥ Suli Liu, Hogune Im, Amos Bairoch, Massimo Cristofanilli, Rui Chen, Eric W. Deutsch, # ¶ △ ● § † Stephen Dalton, David Fenyo, Susan Fanayan,$ Chris Gates, , Pascale Gaudet, Marina Hincapie, ○ ■ △ ⬡ ‡ ⊥ ⬢ Samir Hanash, Hoguen Kim, Seul-Ki Jeong, Emma Lundberg, George Mias, Rajasree Menon, , ∥ □ △ # ⬡ ▲ † Zhaomei Mu, Edouard Nice, Young-Ki Paik, , Mathias Uhlen, Lance Wells, Shiaw-Lin Wu, † † † ‡ ⊥ ⬢ ⬡ Fangfei Yan, Fan Zhang, Yue Zhang, Michael Snyder, Gilbert S. Omenn, , Ronald C. Beavis, † # and William S. Hancock*, ,$, † Barnett Institute and Department of Chemistry and Chemical Biology, Northeastern University, Boston, Massachusetts 02115, United States ‡ Stanford University, Palo Alto, California, United States § Swiss Institute of Bioinformatics (SIB) and University of Geneva, Geneva, Switzerland ∥ Fox Chase Cancer Center, Philadelphia, Pennsylvania, United States ⊥ Institute for System Biology, Seattle, Washington, United States ¶ School of Medicine, New York University, New York, United States $Department of Chemistry and Biomolecular Sciences, Macquarie University, Sydney, NSW, Australia ○ MD Anderson Cancer Center, Houston, Texas, United States ■ Yonsei University College of Medicine, Yonsei University, -
Variation in Protein Coding Genes Identifies Information Flow
bioRxiv preprint doi: https://doi.org/10.1101/679456; this version posted June 21, 2019. The copyright holder for this preprint (which was not certified by peer review) is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under aCC-BY-NC-ND 4.0 International license. Animal complexity and information flow 1 1 2 3 4 5 Variation in protein coding genes identifies information flow as a contributor to 6 animal complexity 7 8 Jack Dean, Daniela Lopes Cardoso and Colin Sharpe* 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 Institute of Biological and Biomedical Sciences 25 School of Biological Science 26 University of Portsmouth, 27 Portsmouth, UK 28 PO16 7YH 29 30 * Author for correspondence 31 [email protected] 32 33 Orcid numbers: 34 DLC: 0000-0003-2683-1745 35 CS: 0000-0002-5022-0840 36 37 38 39 40 41 42 43 44 45 46 47 48 49 Abstract bioRxiv preprint doi: https://doi.org/10.1101/679456; this version posted June 21, 2019. The copyright holder for this preprint (which was not certified by peer review) is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under aCC-BY-NC-ND 4.0 International license. Animal complexity and information flow 2 1 Across the metazoans there is a trend towards greater organismal complexity. How 2 complexity is generated, however, is uncertain. Since C.elegans and humans have 3 approximately the same number of genes, the explanation will depend on how genes are 4 used, rather than their absolute number. -
Accurate Mutation Annotation and Functional Prediction Enhance the Applicability of -Omics Data in Precision Medicine
The Texas Medical Center Library DigitalCommons@TMC The University of Texas MD Anderson Cancer Center UTHealth Graduate School of The University of Texas MD Anderson Cancer Biomedical Sciences Dissertations and Theses Center UTHealth Graduate School of (Open Access) Biomedical Sciences 5-2016 Accurate mutation annotation and functional prediction enhance the applicability of -omics data in precision medicine Tenghui Chen Follow this and additional works at: https://digitalcommons.library.tmc.edu/utgsbs_dissertations Part of the Bioinformatics Commons, Computational Biology Commons, Genomics Commons, and the Medicine and Health Sciences Commons Recommended Citation Chen, Tenghui, "Accurate mutation annotation and functional prediction enhance the applicability of -omics data in precision medicine" (2016). The University of Texas MD Anderson Cancer Center UTHealth Graduate School of Biomedical Sciences Dissertations and Theses (Open Access). 666. https://digitalcommons.library.tmc.edu/utgsbs_dissertations/666 This Dissertation (PhD) is brought to you for free and open access by the The University of Texas MD Anderson Cancer Center UTHealth Graduate School of Biomedical Sciences at DigitalCommons@TMC. It has been accepted for inclusion in The University of Texas MD Anderson Cancer Center UTHealth Graduate School of Biomedical Sciences Dissertations and Theses (Open Access) by an authorized administrator of DigitalCommons@TMC. For more information, please contact [email protected]. ACCURATE MUTATION ANNOTATION AND FUNCTIONAL PREDICTION