Literature DB >> 7517218

CD34+ peripheral blood progenitors as a target for genetic correction of the two flavocytochrome b558 defective forms of chronic granulomatous disease.

F Li1, G F Linton, S Sekhsaria, N Whiting-Theobald, J P Katkin, J I Gallin, H L Malech.   

Abstract

Chronic granulomatous disease (CGD) can result from any of four single gene defects involving components of the superoxide (O2-.)-generating phagocyte NADPH oxidase (phox). The phox transmembrane flavocytochrome b558 is composed of two peptides, gp91phox and p22phox. Mutations of gp91phox cause X-linked CGD, whereas mutations of p22phox cause one of the three autosomal recessive forms of CGD. We used the Maloney leukemia virus-based MFG retrovirus vector to produce replication defective retroviruses encoding gp91phox or p22phox. To maximize viral titer MFG retroviruses do not contain internal promoter or resistance elements. Epstein-Barr virus transformed B-lymphocyte cell lines (EBV-B) derived from normal individuals contain phox components and produce O2-., whereas those derived from CGD patients show the CGD defect. Transduction of gp91phox or p22phox-deficient CGD EBV-B lines resulted in correction of O2-. production from a barely detectable baseline to an average 7.2% and 13.8% of normal control, respectively, without any selective regimen to enrich for transduced cells. CD34+ hematopoietic progenitor cells, the therapeutic target for gene therapy of CGD, were isolated from peripheral blood of CGD patients, transduced with MFG-phox retroviruses, and differentiated in culture to mature phagocytes. Transduction of progenitors corrected the gp91phox (seven patients) and p22phox (two patients) CGD phagocyte oxidase defect to 2.5% and 4.9% of normal O2-. production, respectively, representing an 87-fold and 161-fold increase. These studies show correction of flavocytochrome b558-deficient CGD in primary hematopoietic progenitors, providing a basis for development of gene therapy for the X-linked gp91phox and autosomal p22phox-deficient forms of CGD.

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Year:  1994        PMID: 7517218

Source DB:  PubMed          Journal:  Blood        ISSN: 0006-4971            Impact factor:   22.113


  12 in total

Review 1.  Chronic granulomatous disease.

Authors:  D Goldblatt; A J Thrasher
Journal:  Clin Exp Immunol       Date:  2000-10       Impact factor: 4.330

2.  Prolonged production of NADPH oxidase-corrected granulocytes after gene therapy of chronic granulomatous disease.

Authors:  H L Malech; P B Maples; N Whiting-Theobald; G F Linton; S Sekhsaria; S J Vowells; F Li; J A Miller; E DeCarlo; S M Holland; S F Leitman; C S Carter; R E Butz; E J Read; T A Fleisher; R D Schneiderman; D E Van Epps; S K Spratt; C A Maack; J A Rokovich; L K Cohen; J I Gallin
Journal:  Proc Natl Acad Sci U S A       Date:  1997-10-28       Impact factor: 11.205

3.  Multiple SH3 domain interactions regulate NADPH oxidase assembly in whole cells.

Authors:  I de Mendez; A G Adams; R A Sokolic; H L Malech; T L Leto
Journal:  EMBO J       Date:  1996-03-15       Impact factor: 11.598

Review 4.  Gene therapy of primary immunodeficiencies.

Authors:  F Candotti; R M Blaese
Journal:  Springer Semin Immunopathol       Date:  1998

5.  An AAVS1-targeted minigene platform for correction of iPSCs from all five types of chronic granulomatous disease.

Authors:  Randall K Merling; Colin L Sweeney; Jessica Chu; Aaron Bodansky; Uimook Choi; Debra Long Priel; Douglas B Kuhns; Hongmei Wang; Sam Vasilevsky; Suk See De Ravin; Thomas Winkler; Cynthia E Dunbar; Jizhong Zou; Kol A Zarember; John I Gallin; Steven M Holland; Harry L Malech
Journal:  Mol Ther       Date:  2014-10-07       Impact factor: 11.454

6.  Mobilization characteristics and strategies to improve hematopoietic progenitor cell mobilization and collection in patients with chronic granulomatous disease and severe combined immunodeficiency.

Authors:  Sandhya R Panch; Yu Ying Yau; Elizabeth M Kang; Suk See De Ravin; Harry L Malech; Susan F Leitman
Journal:  Transfusion       Date:  2014-08-21       Impact factor: 3.157

7.  Expression of human phenylalanine hydroxylase activity in T lymphocytes of classical phenylketonuria children by retroviral-mediated gene transfer.

Authors:  C M Lin; Y Tan; Y M Lee; C C Chang; K J Hsiao
Journal:  J Inherit Metab Dis       Date:  1997-11       Impact factor: 4.982

8.  Retrovirus gene therapy for X-linked chronic granulomatous disease can achieve stable long-term correction of oxidase activity in peripheral blood neutrophils.

Authors:  Elizabeth M Kang; Uimook Choi; Narda Theobald; Gilda Linton; Debra A Long Priel; Doug Kuhns; Harry L Malech
Journal:  Blood       Date:  2009-12-01       Impact factor: 22.113

Review 9.  The molecular basis of chronic granulomatous disease.

Authors:  C Meischl; D Roos
Journal:  Springer Semin Immunopathol       Date:  1998

10.  Simian immunodeficiency virus lentivector corrects human X-linked chronic granulomatous disease in the NOD/SCID mouse xenograft.

Authors:  N Naumann; S S De Ravin; U Choi; M Moayeri; N Whiting-Theobald; G F Linton; Y Ikeda; H L Malech
Journal:  Gene Ther       Date:  2007-08-30       Impact factor: 5.250

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