Functional Characterization of Germline Mutations in PDGFB and PDGFRB in Primary Familial Brain Calcification.

Primary Familial Brain Calcification (PFBC), a neurodegenerative disease characterized by progressive pericapillary calcifications, has recently been linked to heterozygous mutations in PDGFB and PDGFRB genes. Here, we functionally analyzed several of these mutations in vitro. All six analyzed PDGFB...

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Main Authors: Michael Vanlandewijck, Thibaud Lebouvier, Maarja Andaloussi Mäe, Khayrun Nahar, Simone Hornemann, David Kenkel, Sara I Cunha, Johan Lennartsson, Andreas Boss, Carl-Henrik Heldin, Annika Keller, Christer Betsholtz
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0143407
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spelling doaj-fa59e83e7f19451c8403602659ddc2662021-03-03T19:57:34ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-011011e014340710.1371/journal.pone.0143407Functional Characterization of Germline Mutations in PDGFB and PDGFRB in Primary Familial Brain Calcification.Michael VanlandewijckThibaud LebouvierMaarja Andaloussi MäeKhayrun NaharSimone HornemannDavid KenkelSara I CunhaJohan LennartssonAndreas BossCarl-Henrik HeldinAnnika KellerChrister BetsholtzPrimary Familial Brain Calcification (PFBC), a neurodegenerative disease characterized by progressive pericapillary calcifications, has recently been linked to heterozygous mutations in PDGFB and PDGFRB genes. Here, we functionally analyzed several of these mutations in vitro. All six analyzed PDGFB mutations led to complete loss of PDGF-B function either through abolished protein synthesis or through defective binding and/or stimulation of PDGF-Rβ. The three analyzed PDGFRB mutations had more diverse consequences. Whereas PDGF-Rβ autophosphorylation was almost totally abolished in the PDGFRB L658P mutation, the two sporadic PDGFRB mutations R987W and E1071V caused reductions in protein levels and specific changes in the intensity and kinetics of PLCγ activation, respectively. Since at least some of the PDGFB mutations were predicted to act through haploinsufficiency, we explored the consequences of reduced Pdgfb or Pdgfrb transcript and protein levels in mice. Heterozygous Pdgfb or Pdgfrb knockouts, as well as double Pdgfb+/-;Pdgfrb+/- mice did not develop brain calcification, nor did Pdgfrbredeye/redeye mice, which show a 90% reduction of PDGFRβ protein levels. In contrast, Pdgfbret/ret mice, which have altered tissue distribution of PDGF-B protein due to loss of a proteoglycan binding motif, developed brain calcifications. We also determined pericyte coverage in calcification-prone and non-calcification-prone brain regions in Pdgfbret/ret mice. Surprisingly and contrary to our hypothesis, we found that the calcification-prone brain regions in Pdgfbret/ret mice model had a higher pericyte coverage and a more intact blood-brain barrier (BBB) compared to non-calcification-prone brain regions. While our findings provide clear evidence that loss-of-function mutations in PDGFB or PDGFRB cause PFBC, they also demonstrate species differences in the threshold levels of PDGF-B/PDGF-Rβ signaling that protect against small-vessel calcification in the brain. They further implicate region-specific susceptibility factor(s) in PFBC pathogenesis that are distinct from pericyte and BBB deficiency.https://doi.org/10.1371/journal.pone.0143407
collection DOAJ
language English
format Article
sources DOAJ
author Michael Vanlandewijck
Thibaud Lebouvier
Maarja Andaloussi Mäe
Khayrun Nahar
Simone Hornemann
David Kenkel
Sara I Cunha
Johan Lennartsson
Andreas Boss
Carl-Henrik Heldin
Annika Keller
Christer Betsholtz
spellingShingle Michael Vanlandewijck
Thibaud Lebouvier
Maarja Andaloussi Mäe
Khayrun Nahar
Simone Hornemann
David Kenkel
Sara I Cunha
Johan Lennartsson
Andreas Boss
Carl-Henrik Heldin
Annika Keller
Christer Betsholtz
Functional Characterization of Germline Mutations in PDGFB and PDGFRB in Primary Familial Brain Calcification.
PLoS ONE
author_facet Michael Vanlandewijck
Thibaud Lebouvier
Maarja Andaloussi Mäe
Khayrun Nahar
Simone Hornemann
David Kenkel
Sara I Cunha
Johan Lennartsson
Andreas Boss
Carl-Henrik Heldin
Annika Keller
Christer Betsholtz
author_sort Michael Vanlandewijck
title Functional Characterization of Germline Mutations in PDGFB and PDGFRB in Primary Familial Brain Calcification.
title_short Functional Characterization of Germline Mutations in PDGFB and PDGFRB in Primary Familial Brain Calcification.
title_full Functional Characterization of Germline Mutations in PDGFB and PDGFRB in Primary Familial Brain Calcification.
title_fullStr Functional Characterization of Germline Mutations in PDGFB and PDGFRB in Primary Familial Brain Calcification.
title_full_unstemmed Functional Characterization of Germline Mutations in PDGFB and PDGFRB in Primary Familial Brain Calcification.
title_sort functional characterization of germline mutations in pdgfb and pdgfrb in primary familial brain calcification.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Primary Familial Brain Calcification (PFBC), a neurodegenerative disease characterized by progressive pericapillary calcifications, has recently been linked to heterozygous mutations in PDGFB and PDGFRB genes. Here, we functionally analyzed several of these mutations in vitro. All six analyzed PDGFB mutations led to complete loss of PDGF-B function either through abolished protein synthesis or through defective binding and/or stimulation of PDGF-Rβ. The three analyzed PDGFRB mutations had more diverse consequences. Whereas PDGF-Rβ autophosphorylation was almost totally abolished in the PDGFRB L658P mutation, the two sporadic PDGFRB mutations R987W and E1071V caused reductions in protein levels and specific changes in the intensity and kinetics of PLCγ activation, respectively. Since at least some of the PDGFB mutations were predicted to act through haploinsufficiency, we explored the consequences of reduced Pdgfb or Pdgfrb transcript and protein levels in mice. Heterozygous Pdgfb or Pdgfrb knockouts, as well as double Pdgfb+/-;Pdgfrb+/- mice did not develop brain calcification, nor did Pdgfrbredeye/redeye mice, which show a 90% reduction of PDGFRβ protein levels. In contrast, Pdgfbret/ret mice, which have altered tissue distribution of PDGF-B protein due to loss of a proteoglycan binding motif, developed brain calcifications. We also determined pericyte coverage in calcification-prone and non-calcification-prone brain regions in Pdgfbret/ret mice. Surprisingly and contrary to our hypothesis, we found that the calcification-prone brain regions in Pdgfbret/ret mice model had a higher pericyte coverage and a more intact blood-brain barrier (BBB) compared to non-calcification-prone brain regions. While our findings provide clear evidence that loss-of-function mutations in PDGFB or PDGFRB cause PFBC, they also demonstrate species differences in the threshold levels of PDGF-B/PDGF-Rβ signaling that protect against small-vessel calcification in the brain. They further implicate region-specific susceptibility factor(s) in PFBC pathogenesis that are distinct from pericyte and BBB deficiency.
url https://doi.org/10.1371/journal.pone.0143407
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