Literature DB >> 20889497

Unexpected expression pattern for glycosylphosphatidylinositol-anchored HDL-binding protein 1 (GPIHBP1) in mouse tissues revealed by positron emission tomography scanning.

Tove Olafsen1, Stephen G Young, Brandon S J Davies, Anne P Beigneux, Vania E Kenanova, Constance Voss, Glen Young, Koon-Pong Wong, Richard H Barnes, Yiping Tu, Michael M Weinstein, Chika Nobumori, Sung-Cheng Huang, Ira J Goldberg, André Bensadoun, Anna M Wu, Loren G Fong.   

Abstract

Glycosylphosphatidylinositol-anchored high density lipoprotein-binding protein 1 (GPIHBP1), a GPI-anchored endothelial cell protein, binds lipoprotein lipase (LPL) and transports it into the lumen of capillaries where it hydrolyzes triglycerides in lipoproteins. GPIHBP1 is assumed to be expressed mainly within the heart, skeletal muscle, and adipose tissue, the sites where most lipolysis occurs, but the tissue pattern of GPIHBP1 expression has never been evaluated systematically. Because GPIHBP1 is found on the luminal face of capillaries, we predicted that it would be possible to define GPIHBP1 expression patterns with radiolabeled GPIHBP1-specific antibodies and positron emission tomography (PET) scanning. In Gpihbp1(-/-) mice, GPIHBP1-specific antibodies were cleared slowly from the blood, and PET imaging showed retention of the antibodies in the blood pools (heart and great vessels). In Gpihbp1(+/+) mice, the antibodies were cleared extremely rapidly from the blood and, to our surprise, were taken up mainly by lung and liver. Immunofluorescence microscopy confirmed the presence of GPIHBP1 in the capillary endothelium of both lung and liver. In most tissues with high levels of Gpihbp1 expression, Lpl expression was also high, but the lung was an exception (very high Gpihbp1 expression and extremely low Lpl expression). Despite low Lpl transcript levels, however, LPL protein was readily detectable in the lung, suggesting that some of that LPL originates elsewhere and then is captured by GPIHBP1 in the lung. In support of this concept, lung LPL levels were significantly lower in Gpihbp1(-/-) mice than in Gpihbp1(+/+) mice. In addition, Lpl(-/-) mice expressing human LPL exclusively in muscle contained high levels of human LPL in the lung.

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Year:  2010        PMID: 20889497      PMCID: PMC2998116          DOI: 10.1074/jbc.M110.171041

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  21 in total

1.  Tailoring the pharmacokinetics and positron emission tomography imaging properties of anti-carcinoembryonic antigen single-chain Fv-Fc antibody fragments.

Authors:  Vania Kenanova; Tove Olafsen; Desiree M Crow; Gobalakrishnan Sundaresan; Murugesan Subbarayan; Nora H Carter; David N Ikle; Paul J Yazaki; Arion F Chatziioannou; Sanjiv S Gambhir; Lawrence E Williams; John E Shively; David Colcher; Andrew A Raubitschek; Anna M Wu
Journal:  Cancer Res       Date:  2005-01-15       Impact factor: 12.701

2.  Radioiodinated versus radiometal-labeled anti-carcinoembryonic antigen single-chain Fv-Fc antibody fragments: optimal pharmacokinetics for therapy.

Authors:  Vania Kenanova; Tove Olafsen; Lawrence E Williams; Nora H Ruel; Jeffrey Longmate; Paul J Yazaki; John E Shively; David Colcher; Andrew A Raubitschek; Anna M Wu
Journal:  Cancer Res       Date:  2007-01-15       Impact factor: 12.701

3.  Tunable pharmacokinetics: modifying the in vivo half-life of antibodies by directed mutagenesis of the Fc fragment.

Authors:  Tove Olafsen; Vania E Kenanova; Anna M Wu
Journal:  Nat Protoc       Date:  2006       Impact factor: 13.491

4.  Optimizing radiolabeled engineered anti-p185HER2 antibody fragments for in vivo imaging.

Authors:  Tove Olafsen; Vania E Kenanova; Gobalakrishnan Sundaresan; Anne-Line Anderson; Desiree Crow; Paul J Yazaki; Lin Li; Michael F Press; Sanjiv S Gambhir; Lawrence E Williams; Jeffrey Y C Wong; Andrew A Raubitschek; John E Shively; Anna M Wu
Journal:  Cancer Res       Date:  2005-07-01       Impact factor: 12.701

5.  Lipid and lipoprotein analysis of cats with lipoprotein lipase deficiency.

Authors:  D G Ginzinger; S M Clee; J Dallongeville; M E Lewis; H E Henderson; E Bauje; Q R Rogers; D R Jensen; R H Eckel; R Dyer; S Innis; B Jones; J C Fruchart; M R Hayden
Journal:  Eur J Clin Invest       Date:  1999-01       Impact factor: 4.686

6.  Glycosylphosphatidylinositol-anchored high-density lipoprotein-binding protein 1 plays a critical role in the lipolytic processing of chylomicrons.

Authors:  Anne P Beigneux; Brandon S J Davies; Peter Gin; Michael M Weinstein; Emily Farber; Xin Qiao; Franklin Peale; Stuart Bunting; Rosemary L Walzem; Jinny S Wong; William S Blaner; Zhi-Ming Ding; Kristan Melford; Nuttaporn Wongsiriroj; Xiao Shu; Fred de Sauvage; Robert O Ryan; Loren G Fong; André Bensadoun; Stephen G Young
Journal:  Cell Metab       Date:  2007-04       Impact factor: 27.287

7.  Severe hypertriglyceridemia, reduced high density lipoprotein, and neonatal death in lipoprotein lipase knockout mice. Mild hypertriglyceridemia with impaired very low density lipoprotein clearance in heterozygotes.

Authors:  P H Weinstock; C L Bisgaier; K Aalto-Setälä; H Radner; R Ramakrishnan; S Levak-Frank; A D Essenburg; R Zechner; J L Breslow
Journal:  J Clin Invest       Date:  1995-12       Impact factor: 14.808

8.  PET imaging of colorectal cancer in xenograft-bearing mice by use of an 18F-labeled T84.66 anti-carcinoembryonic antigen diabody.

Authors:  Weibo Cai; Tove Olafsen; Xianzhong Zhang; Qizhen Cao; Sanjiv S Gambhir; Lawrence E Williams; Anna M Wu; Xiaoyuan Chen
Journal:  J Nucl Med       Date:  2007-02       Impact factor: 10.057

9.  Spontaneous atherosclerosis in aged lipoprotein lipase-deficient mice with severe hypertriglyceridemia on a normal chow diet.

Authors:  Xiaohong Zhang; Rong Qi; Xunde Xian; Fei Yang; Michael Blackstein; Xuming Deng; Jianglin Fan; Colin Ross; Joanna Karasinska; Michael R Hayden; George Liu
Journal:  Circ Res       Date:  2007-11-21       Impact factor: 17.367

10.  Muscle-specific overexpression of lipoprotein lipase causes a severe myopathy characterized by proliferation of mitochondria and peroxisomes in transgenic mice.

Authors:  S Levak-Frank; H Radner; A Walsh; R Stollberger; G Knipping; G Hoefler; W Sattler; P H Weinstock; J L Breslow; R Zechner
Journal:  J Clin Invest       Date:  1995-08       Impact factor: 14.808

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  24 in total

1.  Autoantibodies against GPIHBP1 as a Cause of Hypertriglyceridemia.

Authors:  Anne P Beigneux; Kazuya Miyashita; Michael Ploug; Dirk J Blom; Masumi Ai; MacRae F Linton; Weerapan Khovidhunkit; Robert Dufour; Abhimanyu Garg; Maureen A McMahon; Clive R Pullinger; Norma P Sandoval; Xuchen Hu; Christopher M Allan; Mikael Larsson; Tetsuo Machida; Masami Murakami; Karen Reue; Peter Tontonoz; Ira J Goldberg; Philippe Moulin; Sybil Charrière; Loren G Fong; Katsuyuki Nakajima; Stephen G Young
Journal:  N Engl J Med       Date:  2017-04-05       Impact factor: 91.245

2.  Reduced kidney lipoprotein lipase and renal tubule triglyceride accumulation in cisplatin-mediated acute kidney injury.

Authors:  Shenyang Li; Kiran Nagothu; Gouri Ranganathan; Syed M Ali; Brian Shank; Neriman Gokden; Srinivas Ayyadevara; Judit Megyesi; Gunilla Olivecrona; Sumant S Chugh; Sander Kersten; Didier Portilla
Journal:  Am J Physiol Renal Physiol       Date:  2012-05-23

3.  The tissue distribution of lipoprotein lipase determines where chylomicrons bind.

Authors:  Roger Savonen; Michaela Hiden; Magnus Hultin; Rudolf Zechner; Sanja Levak-Frank; Gunilla Olivecrona; Thomas Olivecrona
Journal:  J Lipid Res       Date:  2015-01-14       Impact factor: 5.922

4.  High-resolution imaging of dietary lipids in cells and tissues by NanoSIMS analysis.

Authors:  Haibo Jiang; Chris N Goulbourne; Angelica Tatar; Kirsten Turlo; Daniel Wu; Anne P Beigneux; Chris R M Grovenor; Loren G Fong; Stephen G Young
Journal:  J Lipid Res       Date:  2014-08-20       Impact factor: 5.922

5.  A novel NanoBiT-based assay monitors the interaction between lipoprotein lipase and GPIHBP1 in real time.

Authors:  Shwetha K Shetty; Rosemary L Walzem; Brandon S J Davies
Journal:  J Lipid Res       Date:  2020-02-06       Impact factor: 5.922

Review 6.  Glycosylphosphatidylinositol-anchored high-density lipoprotein-binding protein 1 and the intravascular processing of triglyceride-rich lipoproteins.

Authors:  O Adeyo; C N Goulbourne; A Bensadoun; A P Beigneux; L G Fong; S G Young
Journal:  J Intern Med       Date:  2012-11-01       Impact factor: 8.989

Review 7.  Biochemistry and pathophysiology of intravascular and intracellular lipolysis.

Authors:  Stephen G Young; Rudolf Zechner
Journal:  Genes Dev       Date:  2013-03-01       Impact factor: 11.361

8.  Macrophage lipoprotein lipase modulates the development of atherosclerosis but not adiposity.

Authors:  Manabu Takahashi; Hiroaki Yagyu; Fumiko Tazoe; Shuichi Nagashima; Taichi Ohshiro; Kenta Okada; Jun-ichi Osuga; Ira J Goldberg; Shun Ishibashi
Journal:  J Lipid Res       Date:  2013-02-03       Impact factor: 5.922

9.  Assessing mechanisms of GPIHBP1 and lipoprotein lipase movement across endothelial cells.

Authors:  Brandon S J Davies; Chris N Goulbourne; Richard H Barnes; Kirsten A Turlo; Peter Gin; Sue Vaughan; David J Vaux; André Bensadoun; Anne P Beigneux; Loren G Fong; Stephen G Young
Journal:  J Lipid Res       Date:  2012-09-24       Impact factor: 5.922

Review 10.  GPIHBP1 and Plasma Triglyceride Metabolism.

Authors:  Loren G Fong; Stephen G Young; Anne P Beigneux; André Bensadoun; Monika Oberer; Haibo Jiang; Michael Ploug
Journal:  Trends Endocrinol Metab       Date:  2016-05-14       Impact factor: 12.015

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