Gain-of-Function Mutations in KCNN3 Encoding the Small-Conductance Ca2+-Activated K+ Channel SK3 Cause Zimmermann-Laband Syndrome
Zimmermann-Laband syndrome (ZLS) is characterized by coarse facial features with gingival enlargement, intellectual disability (ID), hypertrichosis, and hypoplasia or aplasia of nails and terminal phalanges. De novo missense mutations in KCNH1 and KCNK4, encoding K+ channels, have been identified in...
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Published in | American journal of human genetics Vol. 104; no. 6; pp. 1139 - 1157 |
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Main Authors | , , , , , , , , , , |
Format | Journal Article |
Language | English |
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Elsevier Inc
06.06.2019
Elsevier |
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Abstract | Zimmermann-Laband syndrome (ZLS) is characterized by coarse facial features with gingival enlargement, intellectual disability (ID), hypertrichosis, and hypoplasia or aplasia of nails and terminal phalanges. De novo missense mutations in KCNH1 and KCNK4, encoding K+ channels, have been identified in subjects with ZLS and ZLS-like phenotype, respectively. We report de novo missense variants in KCNN3 in three individuals with typical clinical features of ZLS. KCNN3 (SK3/KCa2.3) constitutes one of three members of the small-conductance Ca2+-activated K+ (SK) channels that are part of a multiprotein complex consisting of the pore-forming channel subunits, the constitutively bound Ca2+ sensor calmodulin, protein kinase CK2, and protein phosphatase 2A. CK2 modulates Ca2+ sensitivity of the channels by phosphorylating SK-bound calmodulin. Patch-clamp whole-cell recordings of KCNN3 channel-expressing CHO cells demonstrated that disease-associated mutations result in gain of function of the mutant channels, characterized by increased Ca2+ sensitivity leading to faster and more complete activation of KCNN3 mutant channels. Pretreatment of cells with the CK2 inhibitor 4,5,6,7-tetrabromobenzotriazole revealed basal inhibition of wild-type and mutant KCNN3 channels by CK2. Analogous experiments with the KCNN3 p.Val450Leu mutant previously identified in a family with portal hypertension indicated basal constitutive channel activity and thus a different gain-of-function mechanism compared to the ZLS-associated mutant channels. With the report on de novo KCNK4 mutations in subjects with facial dysmorphism, hypertrichosis, epilepsy, ID, and gingival overgrowth, we propose to combine the phenotypes caused by mutations in KCNH1, KCNK4, and KCNN3 in a group of neurological potassium channelopathies caused by an increase in K+ conductance. |
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AbstractList | Zimmermann-Laband syndrome (ZLS) is characterized by coarse facial features with gingival enlargement, intellectual disability (ID), hypertrichosis, and hypoplasia or aplasia of nails and terminal phalanges. De novo missense mutations in KCNH1 and KCNK4, encoding K+ channels, have been identified in subjects with ZLS and ZLS-like phenotype, respectively. We report de novo missense variants in KCNN3 in three individuals with typical clinical features of ZLS. KCNN3 (SK3/KCa2.3) constitutes one of three members of the small-conductance Ca2+-activated K+ (SK) channels that are part of a multiprotein complex consisting of the pore-forming channel subunits, the constitutively bound Ca2+ sensor calmodulin, protein kinase CK2, and protein phosphatase 2A. CK2 modulates Ca2+ sensitivity of the channels by phosphorylating SK-bound calmodulin. Patch-clamp whole-cell recordings of KCNN3 channel-expressing CHO cells demonstrated that disease-associated mutations result in gain of function of the mutant channels, characterized by increased Ca2+ sensitivity leading to faster and more complete activation of KCNN3 mutant channels. Pretreatment of cells with the CK2 inhibitor 4,5,6,7-tetrabromobenzotriazole revealed basal inhibition of wild-type and mutant KCNN3 channels by CK2. Analogous experiments with the KCNN3 p.Val450Leu mutant previously identified in a family with portal hypertension indicated basal constitutive channel activity and thus a different gain-of-function mechanism compared to the ZLS-associated mutant channels. With the report on de novo KCNK4 mutations in subjects with facial dysmorphism, hypertrichosis, epilepsy, ID, and gingival overgrowth, we propose to combine the phenotypes caused by mutations in KCNH1, KCNK4, and KCNN3 in a group of neurological potassium channelopathies caused by an increase in K+ conductance.Zimmermann-Laband syndrome (ZLS) is characterized by coarse facial features with gingival enlargement, intellectual disability (ID), hypertrichosis, and hypoplasia or aplasia of nails and terminal phalanges. De novo missense mutations in KCNH1 and KCNK4, encoding K+ channels, have been identified in subjects with ZLS and ZLS-like phenotype, respectively. We report de novo missense variants in KCNN3 in three individuals with typical clinical features of ZLS. KCNN3 (SK3/KCa2.3) constitutes one of three members of the small-conductance Ca2+-activated K+ (SK) channels that are part of a multiprotein complex consisting of the pore-forming channel subunits, the constitutively bound Ca2+ sensor calmodulin, protein kinase CK2, and protein phosphatase 2A. CK2 modulates Ca2+ sensitivity of the channels by phosphorylating SK-bound calmodulin. Patch-clamp whole-cell recordings of KCNN3 channel-expressing CHO cells demonstrated that disease-associated mutations result in gain of function of the mutant channels, characterized by increased Ca2+ sensitivity leading to faster and more complete activation of KCNN3 mutant channels. Pretreatment of cells with the CK2 inhibitor 4,5,6,7-tetrabromobenzotriazole revealed basal inhibition of wild-type and mutant KCNN3 channels by CK2. Analogous experiments with the KCNN3 p.Val450Leu mutant previously identified in a family with portal hypertension indicated basal constitutive channel activity and thus a different gain-of-function mechanism compared to the ZLS-associated mutant channels. With the report on de novo KCNK4 mutations in subjects with facial dysmorphism, hypertrichosis, epilepsy, ID, and gingival overgrowth, we propose to combine the phenotypes caused by mutations in KCNH1, KCNK4, and KCNN3 in a group of neurological potassium channelopathies caused by an increase in K+ conductance. Zimmermann-Laband syndrome (ZLS) is characterized by coarse facial features with gingival enlargement, intellectual disability (ID), hypertrichosis, and hypoplasia or aplasia of nails and terminal phalanges. De novo missense mutations in KCNH1 and KCNK4, encoding K+ channels, have been identified in subjects with ZLS and ZLS-like phenotype, respectively. We report de novo missense variants in KCNN3 in three individuals with typical clinical features of ZLS. KCNN3 (SK3/KCa2.3) constitutes one of three members of the small-conductance Ca2+-activated K+ (SK) channels that are part of a multiprotein complex consisting of the pore-forming channel subunits, the constitutively bound Ca2+ sensor calmodulin, protein kinase CK2, and protein phosphatase 2A. CK2 modulates Ca2+ sensitivity of the channels by phosphorylating SK-bound calmodulin. Patch-clamp whole-cell recordings of KCNN3 channel-expressing CHO cells demonstrated that disease-associated mutations result in gain of function of the mutant channels, characterized by increased Ca2+ sensitivity leading to faster and more complete activation of KCNN3 mutant channels. Pretreatment of cells with the CK2 inhibitor 4,5,6,7-tetrabromobenzotriazole revealed basal inhibition of wild-type and mutant KCNN3 channels by CK2. Analogous experiments with the KCNN3 p.Val450Leu mutant previously identified in a family with portal hypertension indicated basal constitutive channel activity and thus a different gain-of-function mechanism compared to the ZLS-associated mutant channels. With the report on de novo KCNK4 mutations in subjects with facial dysmorphism, hypertrichosis, epilepsy, ID, and gingival overgrowth, we propose to combine the phenotypes caused by mutations in KCNH1, KCNK4, and KCNN3 in a group of neurological potassium channelopathies caused by an increase in K+ conductance. Zimmermann-Laband syndrome (ZLS) is characterized by coarse facial features with gingival enlargement, intellectual disability (ID), hypertrichosis, and hypoplasia or aplasia of nails and terminal phalanges. De novo missense mutations in KCNH1 and KCNK4 , encoding K + channels, have been identified in subjects with ZLS and ZLS-like phenotype, respectively. We report de novo missense variants in KCNN3 in three individuals with typical clinical features of ZLS. KCNN3 (SK3/KCa2.3) constitutes one of three members of the small-conductance Ca 2+ -activated K + (SK) channels that are part of a multiprotein complex consisting of the pore-forming channel subunits, the constitutively bound Ca 2+ sensor calmodulin, protein kinase CK2, and protein phosphatase 2A. CK2 modulates Ca 2+ sensitivity of the channels by phosphorylating SK-bound calmodulin. Patch-clamp whole-cell recordings of KCNN3 channel-expressing CHO cells demonstrated that disease-associated mutations result in gain of function of the mutant channels, characterized by increased Ca 2+ sensitivity leading to faster and more complete activation of KCNN3 mutant channels. Pretreatment of cells with the CK2 inhibitor 4,5,6,7-tetrabromobenzotriazole revealed basal inhibition of wild-type and mutant KCNN3 channels by CK2. Analogous experiments with the KCNN3 p.Val450Leu mutant previously identified in a family with portal hypertension indicated basal constitutive channel activity and thus a different gain-of-function mechanism compared to the ZLS-associated mutant channels. With the report on de novo KCNK4 mutations in subjects with facial dysmorphism, hypertrichosis, epilepsy, ID, and gingival overgrowth, we propose to combine the phenotypes caused by mutations in KCNH1 , KCNK4 , and KCNN3 in a group of neurological potassium channelopathies caused by an increase in K + conductance. |
Author | White, Susan M. Bauer, Christiane K. Baker, Laura Kutsche, Kerstin Schneeberger, Pauline E. Santos-Simarro, Fernando Kortüm, Fanny Keller-Ramey, Jennifer Gripp, Karen W. Campeau, Philippe M. Altmüller, Janine |
AuthorAffiliation | 2 Institute of Human Genetics, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany 8 Victorian Clinical Genetics Services, Murdoch Children’s Research Institute, Royal Children’s Hospital, Melbourne, VIC 3052, Australia 1 Department of Cellular and Integrative Physiology, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany 5 Sección de Genética Clínica, Instituto de Genética Médica y Molecular (INGEMM), Hospital Universitario La Paz, IdiPAZ, CIBERER, ISCIII, 28046 Madrid, Spain 4 Center for Molecular Medicine Cologne (CMMC), University of Cologne, 50931 Cologne, Germany 10 Department of Pediatrics, Sainte-Justine Hospital, University of Montreal, Montréal, QC H3T 1C5, Canada 7 GeneDx, Gaithersburg, MD 20877, USA 9 Department of Paediatrics, University of Melbourne, Melbourne, VIC 3010, Australia 6 Division of Medical Genetics, Alfred I. duPont Hospital for Children, Wilmington, DE 19803, USA 3 Cologne Center for Genomics University of Cologne, 50931 Cologne, Germ |
AuthorAffiliation_xml | – name: 9 Department of Paediatrics, University of Melbourne, Melbourne, VIC 3010, Australia – name: 6 Division of Medical Genetics, Alfred I. duPont Hospital for Children, Wilmington, DE 19803, USA – name: 7 GeneDx, Gaithersburg, MD 20877, USA – name: 8 Victorian Clinical Genetics Services, Murdoch Children’s Research Institute, Royal Children’s Hospital, Melbourne, VIC 3052, Australia – name: 10 Department of Pediatrics, Sainte-Justine Hospital, University of Montreal, Montréal, QC H3T 1C5, Canada – name: 3 Cologne Center for Genomics University of Cologne, 50931 Cologne, Germany – name: 1 Department of Cellular and Integrative Physiology, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany – name: 2 Institute of Human Genetics, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany – name: 4 Center for Molecular Medicine Cologne (CMMC), University of Cologne, 50931 Cologne, Germany – name: 5 Sección de Genética Clínica, Instituto de Genética Médica y Molecular (INGEMM), Hospital Universitario La Paz, IdiPAZ, CIBERER, ISCIII, 28046 Madrid, Spain |
Author_xml | – sequence: 1 givenname: Christiane K. surname: Bauer fullname: Bauer, Christiane K. email: cbauer@uke.de organization: Department of Cellular and Integrative Physiology, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany – sequence: 2 givenname: Pauline E. surname: Schneeberger fullname: Schneeberger, Pauline E. organization: Institute of Human Genetics, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany – sequence: 3 givenname: Fanny surname: Kortüm fullname: Kortüm, Fanny organization: Institute of Human Genetics, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany – sequence: 4 givenname: Janine surname: Altmüller fullname: Altmüller, Janine organization: Cologne Center for Genomics University of Cologne, 50931 Cologne, Germany – sequence: 5 givenname: Fernando surname: Santos-Simarro fullname: Santos-Simarro, Fernando organization: Sección de Genética Clínica, Instituto de Genética Médica y Molecular (INGEMM), Hospital Universitario La Paz, IdiPAZ, CIBERER, ISCIII, 28046 Madrid, Spain – sequence: 6 givenname: Laura surname: Baker fullname: Baker, Laura organization: Division of Medical Genetics, Alfred I. duPont Hospital for Children, Wilmington, DE 19803, USA – sequence: 7 givenname: Jennifer surname: Keller-Ramey fullname: Keller-Ramey, Jennifer organization: GeneDx, Gaithersburg, MD 20877, USA – sequence: 8 givenname: Susan M. surname: White fullname: White, Susan M. organization: Victorian Clinical Genetics Services, Murdoch Children’s Research Institute, Royal Children’s Hospital, Melbourne, VIC 3052, Australia – sequence: 9 givenname: Philippe M. surname: Campeau fullname: Campeau, Philippe M. organization: Department of Pediatrics, Sainte-Justine Hospital, University of Montreal, Montréal, QC H3T 1C5, Canada – sequence: 10 givenname: Karen W. surname: Gripp fullname: Gripp, Karen W. organization: Division of Medical Genetics, Alfred I. duPont Hospital for Children, Wilmington, DE 19803, USA – sequence: 11 givenname: Kerstin surname: Kutsche fullname: Kutsche, Kerstin email: kkutsche@uke.de organization: Institute of Human Genetics, University Medical Center Hamburg-Eppendorf, 20246 Hamburg, Germany |
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Copyright | 2019 American Society of Human Genetics Copyright © 2019 American Society of Human Genetics. Published by Elsevier Inc. All rights reserved. 2019 American Society of Human Genetics. 2019 American Society of Human Genetics |
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