Inherited human Apollo deficiency causes severe bone marrow failure and developmental defects

Author:

Kermasson Laëtitia1,Churikov Dmitri2ORCID,Awad Aya3ORCID,Smoom Riham3,Lainey Elodie4,Touzot Fabien5ORCID,Audebert-Bellanger Séverine6,Haro Sophie6,Roger Lauréline7,Costa Emilia8ORCID,Mouf Maload9,Bottero Adriana10,Oleastro Matias11,Abdo Chrystelle12,de Villartay Jean-Pierre1,Géli Vincent2ORCID,Tzfati Yehuda3,Callebaut Isabelle13,Danielian Silvia14,Soares Gabriela15,Kannengiesser Caroline16,Revy Patrick1ORCID

Affiliation:

1. Laboratory of Genome Dynamics in the Immune System, Laboratoire labellisé Ligue Naionale contre le Cancer, INSERM UMR 1163, Université de Paris, Imagine Institute, Paris, France;

2. U1068 INSERM, Unité Mixte de Recherche (UMR) 7258 (CNRS), Equipe Labellisée Ligue Nationale Contre le Cancer, Marseille Cancer Research Center (CRCM), Institut Paoli-Calmettes, Aix Marseille University, Marseille, France;

3. Department of Genetics, The Silberman Institute of Life Science, The Hebrew University of Jerusalem, Safra Campus-Givat Ram, Jerusalem, Israel;

4. Hematology Laboratory, Robert Debré Hospital-Assistance Publique-Hôpitaux de Paris (APHP); INSERM UMR 1131-Hematology University Institute-Denis Diderot School of Medicine, Paris, France;

5. Department of Immunology-Rheumatology, Department of Pediatrics, Centre Hospitalier Universitaire (CHU), Sainte Justine Research Center, Université de Montréal, Montréal, Quebec, Canada;

6. Department of Paediatrics and Medical Genetics, CHU de Brest, Brest, France;

7. Structure and Instability of Genomes laboratory, “Muséum National d’Histoire Naturelle” (MNHN), INSERM U1154, CNRS UMR 7196, Paris, France;

8. Serviço de Pediatria, Centro Hospitalar e Universitário do Porto, Porto, Portugal;

9. 68HAL Meddle Laboratory, Zenon Skelter Institute, Green Hills, Eggum, Norway;

10. Servicio de Gastroenterología;

11. Rheumathology and Immunology Service, Hospital Nacional de Pediatría JP Garrahan, Buenos Aires, Argentina;

12. Onco-Hematology, Assistance Publique-Hôpitaux de Paris, Université de Paris and Institut Necker Enfants Malades, Paris, France;

13. UMR CNRS 7590, Institut de Minéralogie, de Physique des Matériaux et de Cosmochimie (IMPMC), Muséum National d’Histoire Naturelle, Sorbonne Université, Paris, France;

14. Department of Immunology, JP Garrahan National Hospital of Pediatrics, Buenos Aires, Argentina;

15. Centro de Genética Médica Jacinto de Magalhães, Centro Hospitalar e Universitário do Porto, Porto, Portugal; and

16. Service de Génétique, Assistance Publique des Hôpitaux de Paris, Hôpital Bichat, Université Paris Diderot, Paris, France

Abstract

Abstract Inherited bone marrow failure syndromes (IBMFSs) are a group of disorders typified by impaired production of 1 or several blood cell types. The telomere biology disorders dyskeratosis congenita (DC) and its severe variant, Høyeraal-Hreidarsson (HH) syndrome, are rare IBMFSs characterized by bone marrow failure, developmental defects, and various premature aging complications associated with critically short telomeres. We identified biallelic variants in the gene encoding the 5′-to-3′ DNA exonuclease Apollo/SNM1B in 3 unrelated patients presenting with a DC/HH phenotype consisting of early-onset hypocellular bone marrow failure, B and NK lymphopenia, developmental anomalies, microcephaly, and/or intrauterine growth retardation. All 3 patients carry a homozygous or compound heterozygous (in combination with a null allele) missense variant affecting the same residue L142 (L142F or L142S) located in the catalytic domain of Apollo. Apollo-deficient cells from patients exhibited spontaneous chromosome instability and impaired DNA repair that was complemented by CRISPR/Cas9-mediated gene correction. Furthermore, patients’ cells showed signs of telomere fragility that were not associated with global reduction of telomere length. Unlike patients’ cells, human Apollo KO HT1080 cell lines showed strong telomere dysfunction accompanied by excessive telomere shortening, suggesting that the L142S and L142F Apollo variants are hypomorphic. Collectively, these findings define human Apollo as a genome caretaker and identify biallelic Apollo variants as a genetic cause of a hitherto unrecognized severe IBMFS that combines clinical hallmarks of DC/HH with normal telomere length.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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