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      KCI등재 SCOPUS SCIE

      HeLa E-Box Binding Protein, HEB, Inhibits Promoter Activity of the Lysophosphatidic Acid Receptor Gene Lpar1 in Neocortical Neuroblast Cells

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      https://www.riss.kr/link?id=A106058056

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      다국어 초록 (Multilingual Abstract)

      Lysophosphatidic acid (LPA) is an endogenous lysophospholipid with signaling properties outside of the cell and it signals through specific G protein-coupled receptors, known as LPA1–6. For one of its receptors, LPA1 (gene name Lpar1), details on the cis-acting elements for transcriptional control have not been defined. Using 5′RACE analysis, we report the identification of an alternative transcription start site of mouse Lpar1 and characterize approximately 3,500 bp of non-coding flanking sequence 5′ of mouse Lpar1 gene for promoter activity. Transient transfection of cells derived from mouse neocortical neuroblasts with constructs from the 5′ regions of mouse Lpar1 gene revealed the region between −248 to +225 serving as the basal promoter for Lpar1. This region also lacks a TATA box. For the region between −761 to −248, a negative regulatory element affected the basal expression of Lpar1. This region has three E-box sequences and mutagenesis of these E-boxes, followed by transient expression, demonstrated that two of the E-boxes act as negative modulators of Lpar1. One of these E-box sequences bound the HeLa E-box binding protein (HEB), and modulation of HEB levels in the transfected cells regulated the transcription of the reporter gene. Based on our data, we propose that HEB may be required for a proper regulation of Lpar1 expression in the embryonic neocortical neuroblast cells and to affect its function in both normal brain development and disease settings.
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      Lysophosphatidic acid (LPA) is an endogenous lysophospholipid with signaling properties outside of the cell and it signals through specific G protein-coupled receptors, known as LPA1–6. For one of its receptors, LPA1 (gene name Lpar1), details on th...

      Lysophosphatidic acid (LPA) is an endogenous lysophospholipid with signaling properties outside of the cell and it signals through specific G protein-coupled receptors, known as LPA1–6. For one of its receptors, LPA1 (gene name Lpar1), details on the cis-acting elements for transcriptional control have not been defined. Using 5′RACE analysis, we report the identification of an alternative transcription start site of mouse Lpar1 and characterize approximately 3,500 bp of non-coding flanking sequence 5′ of mouse Lpar1 gene for promoter activity. Transient transfection of cells derived from mouse neocortical neuroblasts with constructs from the 5′ regions of mouse Lpar1 gene revealed the region between −248 to +225 serving as the basal promoter for Lpar1. This region also lacks a TATA box. For the region between −761 to −248, a negative regulatory element affected the basal expression of Lpar1. This region has three E-box sequences and mutagenesis of these E-boxes, followed by transient expression, demonstrated that two of the E-boxes act as negative modulators of Lpar1. One of these E-box sequences bound the HeLa E-box binding protein (HEB), and modulation of HEB levels in the transfected cells regulated the transcription of the reporter gene. Based on our data, we propose that HEB may be required for a proper regulation of Lpar1 expression in the embryonic neocortical neuroblast cells and to affect its function in both normal brain development and disease settings.

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      참고문헌 (Reference)

      1 Hecht, J. H., "Ventricular zone gene-1(vzg-1)encodes a lysophosphatidic acid receptor expressed in neurogenic regions of the developing cerebral cortex" 135 : 1071-1083, 1996

      2 Zhou, T., "The intronless and TATA-less human TAF(II)55 gene contains a functional initiator and a downstream promoter element" 276 : 25503-25511, 2001

      3 Engel, I., "The function of E-and Id proteins in lymphocyte development" 1 : 193-199, 2001

      4 Burke, T. W., "The downstream core promoter element, DPE, is conserved from Drosophila to humans and is recognized by TAFII60 of Drosophila" 11 : 3020-3031, 1997

      5 Herr, K. J., "Stereotyped fetal brain disorganization is induced by hypoxia and requires lysophosphatidic acid receptor 1(LPA1)signaling" 108 : 15444-15449, 2011

      6 Zhou, T., "Sp1 and AP2 regulate but do not constitute TATA-less human TAF(II)55 core promoter activity" 30 : 4145-4157, 2002

      7 Chomczynski, P., "Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction" 162 : 156-159, 1987

      8 Contos, J. J., "Requirement for the lpA1 lysophosphatidic acid receptor gene in normal suckling behavior" 97 : 13384-13389, 2000

      9 Gery, S., "Repression of the TMEFF2promoter by c-Myc" 328 : 977-983, 2003

      10 Chen, Y., "Regulation of angiogenesis by phospholipid lysophosphatidic acid" 18 : 852-861, 2013

      1 Hecht, J. H., "Ventricular zone gene-1(vzg-1)encodes a lysophosphatidic acid receptor expressed in neurogenic regions of the developing cerebral cortex" 135 : 1071-1083, 1996

      2 Zhou, T., "The intronless and TATA-less human TAF(II)55 gene contains a functional initiator and a downstream promoter element" 276 : 25503-25511, 2001

      3 Engel, I., "The function of E-and Id proteins in lymphocyte development" 1 : 193-199, 2001

      4 Burke, T. W., "The downstream core promoter element, DPE, is conserved from Drosophila to humans and is recognized by TAFII60 of Drosophila" 11 : 3020-3031, 1997

      5 Herr, K. J., "Stereotyped fetal brain disorganization is induced by hypoxia and requires lysophosphatidic acid receptor 1(LPA1)signaling" 108 : 15444-15449, 2011

      6 Zhou, T., "Sp1 and AP2 regulate but do not constitute TATA-less human TAF(II)55 core promoter activity" 30 : 4145-4157, 2002

      7 Chomczynski, P., "Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction" 162 : 156-159, 1987

      8 Contos, J. J., "Requirement for the lpA1 lysophosphatidic acid receptor gene in normal suckling behavior" 97 : 13384-13389, 2000

      9 Gery, S., "Repression of the TMEFF2promoter by c-Myc" 328 : 977-983, 2003

      10 Chen, Y., "Regulation of angiogenesis by phospholipid lysophosphatidic acid" 18 : 852-861, 2013

      11 Ke, S. H., "Rapid and efficient site-directed mutagenesis by single-tube"megaprimer"PCR method" 25 : 3371-3372, 1997

      12 Lazorchak, A., "New insights into E-protein function in lymphocyte development" 26 : 334-338, 2005

      13 Birgbauer, E., "New developments in the biological functions of lysophospholipids" 63 : 2695-2701, 2006

      14 Roberts, C., "Neurochemical changes in LPA1 receptor deficient mice--a putative model of schizophrenia" 30 : 371-377, 2005

      15 Aoki, J., "Mechanisms of lysophosphatidic acid production" 15 : 477-489, 2004

      16 Kihara, Y., "Lysophospholipid receptor nomenclature review: IUPHAR Review 8" 171 : 3575-3594, 2014

      17 Inoue, M., "Lysophosphatidylcholine induces neuropathic pain through an action of autotaxin to generate lysophosphatidic acid" 152 : 296-298, 2008

      18 David Ladrón de Guevara‐Miranda, "Lysophosphatidic acid‐induced increase in adult hippocampal neurogenesis facilitates the forgetting of cocaine‐contextual memory" Wiley 24 (24): 458-470, 2018

      19 Ye, X., "Lysophosphatidic acid(LPA)signaling in vertebrate reproduction" 21 : 17-24, 2010

      20 Fukushima, N., "Lysophosphatidic acid(LPA)is a novel extracellular regulator of cortical neuroblast morphology" 228 : 6-18, 2000

      21 Anliker, B., "Lysophosphatidic acid(LPA)and its receptor, LPA1, influence embryonic schwann cell migration, myelination, and cell-to-axon segregation" 61 : 2009-2022, 2013

      22 Lapierre, D. M., "Lysophosphatidic acid signals through multiple receptors in osteoclasts to elevate cytosolic calcium concentration, evoke retraction, and promote cell survival" 285 : 25792-25801, 2010

      23 Sheng, X., "Lysophosphatidic acid signalling in development" 142 : 1390-1395, 2015

      24 Yung, Y. C., "Lysophosphatidic acid signaling may initiate fetal hydrocephalus" 3 : 99ra87-, 2011

      25 D’Souza, K., "Lysophosphatidic acid signaling in obesity and insulin resistance" 10 : 399-, 2018

      26 Uchida, H., "Lysophosphatidic acid and its receptors LPA1 and LPA3 mediate paclitaxel-induced neuropathic pain in mice" 10 : 71-, 2014

      27 Yung, Y. C., "Lysophosphatidic Acid Signaling in the Nervous System" 85 : 669-682, 2015

      28 Chan, L. C., "LPA3 receptor mediates chemotaxis of immature murine dendritic cells to unsaturated lysophosphatidic acid(LPA)" 82 : 1193-1200, 2007

      29 Harrison, S. M., "LPA1 receptor-deficient mice have phenotypic changes observed in psychiatric disease" 24 : 1170-1179, 2003

      30 Choi, J. W., "LPA receptors : subtypes and biological actions" 50 : 157-186, 2010

      31 Yung, Y. C., "LPA receptor signaling : pharmacology, physiology, and pathophysiology" 55 : 1192-1214, 2014

      32 Liu, Y. -B., "LPA induces osteoblast differentiation through interplay of two receptors : LPA1 and LPA4" 109 : 794-800, 2010

      33 Kano, K., "LPA and its analogs-attractive tools for elucidation of LPA biology and drug development" 15 : 2122-2131, 2008

      34 Tsujiuchi, T., "Involvement of aberrant DNA methylation on reduced expression of lysophosphatidic acid receptor-1 gene in rat tumor cell lines" 349 : 1151-1155, 2006

      35 Xie, W., "Involvement of LPA1 receptor signaling in the reorganization of spinal input through Abeta-fibers in mice with partial sciatic nerve injury" 4 : 46-, 2008

      36 Inoue, M., "Initiation of neuropathic pain requires lysophosphatidic acid receptor signaling" 10 : 712-718, 2004

      37 Zhou, G. -P., "Human potassium chloride cotransporter 1(SLC12A4)promoter is regulated by AP-2 and contains a functional downstream promoter element" 103 : 4302-4309, 2004

      38 Murre, C., "Helix-loop-helix proteins and lymphocyte development" 6 : 1079-1086, 2005

      39 Massari, M. E., "Helix-loop-helix proteins : regulators of transcription in eucaryotic organisms" 20 : 429-440, 2000

      40 Yoon, S. -J., "HEB associates with PRC2 and SMAD2/3 to regulate developmental fates" 6 : 6546-, 2015

      41 Benson, L. Q., "Expression of MXI1, a Myc antagonist, is regulated by Sp1 and AP2" 274 : 28794-28802, 1999

      42 Welner, R. S., "Evolving views on the genealogy of B cells" 8 : 95-106, 2008

      43 Jen, Y., "Each member of the Id gene family exhibits a unique expression pattern in mouse gastrulation and neurogenesis" 208 : 92-106, 1997

      44 Fischer, B., "E-proteins orchestrate the progression of neural stem cell differentiation in the postnatal forebrain" 9 : 23-, 2014

      45 Wang, L. -H., "E Proteins and ID Proteins : Helix-Loop-Helix Partners in Development and Disease" 35 : 269-280, 2015

      46 Goetzl, E. J., "Cutting edge : differential constitutive expression of functional receptors for lysophosphatidic acid by human blood lymphocytes" 164 : 4996-4999, 2000

      47 Powell, L. M., "Context dependence of proneural bHLH proteins" 18 : 411-417, 2008

      48 Contos, J. J., "Complete cDNA sequence, genomic structure, and chromosomal localization of the LPA receptor gene, lpA1/vzg-1/Gpcr26" 51 : 364-378, 1998

      49 Chun, J., "Clonal cell lines produced by infection of neocortical neuroblasts using multiple oncogenes transduced by retroviruses" 7 : 304-321, 1996

      50 Chow, G., "Characterization of promoter elements of the human HYAL-2 gene" 280 : 26904-26912, 2005

      51 Yoshitane, H., "CLOCK-controlled polyphonic regulation of circadian rhythms through canonical and noncanonical E-boxes" 34 : 1776-1787, 2014

      52 Ross, S. E., "Basic helix-loophelix factors in cortical development" 39 : 13-25, 2003

      53 Zhang, Y., "Autotaxin through lysophosphatidic acid stimulates polarization, motility, and transendothelial migration of naive T cells" 189 : 3914-3924, 2012

      54 Yukiura, H., "Autotaxin regulates vascular development via multiple lysophosphatidic acid(LPA)receptors in zebrafish" 286 : 43972-43983, 2011

      55 Valet, P., "Alpha2-adrenergic receptor-mediated release of lysophosphatidic acid by adipocytes. A paracrine signal for preadipocyte growth" 101 : 1431-1438, 1998

      56 Gennero, I., "Absence of the lysophosphatidic acid receptor LPA1 results in abnormal bone development and decreased bone mass" 49 : 395-403, 2011

      57 Estivill-Torrus, G., "Absence of LPA1 signaling results in defective cortical development" 18 : 938-950, 2008

      58 Urban, A., "A rapid and efficient method for site-directed mutagenesis using one-step overlap extension PCR" 25 : 2227-2228, 1997

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