Telomere content and genomics of myeloid neoplasia by whole-genome sequencing

L Luca Guarnera A Adam Wahida C Carmelo Gurnari (1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH) S Stephan Hutter (4Munich Leukemia Laboratory, Munich, Germany) S Sabine A. Stainczyk (5Hopp Children’s Cancer Center, Heidelberg, Germany) N Nakisha D. Williams (1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH) A Arda Durmaz (Department of Genomic Medicine, Cleveland Clinic Research) Y Yasuo Kubota (4Department of Pediatrics, Graduate School of Medicine, The University of Tokyo, Tokyo, Japan) C Carlos Bravo-Perez (1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH) N Naomi Kawashima (1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH) M Mark Orland (1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH) S Simona Pagliuca (1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH) Y Yimin Huang T Thomas LaFramboise (Department of Genetics and Genome Sciences School of Medicine, Case Western Reserve University) V Valeria Visconte (1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH) W Wencke Walter (4Munich Leukemia Laboratory, Munich, Germany) M Manja Meggendorfer (46Munich Leukemia Laboratory, Munich, Germany) W Wolfgang Kern (40MLL Munich Leukemia Laboratory, Munich, Germany) F Frank Westermann L Lars Feuerbach (11Division of Applied Bioinformatics, German Cancer Research Center, German Cancer Consortium, Heidelberg, Germany) T Torsten Haferlach (7Munich Leukemia Laboratory, Munich, Germany) J Jaroslaw P. Maciejewski (1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH)

Abstract

Abstract Telomere length shortening has been associated with genomic instability and acquisition of molecular lesions, but these processes have not been systematically studied across large cohorts of myeloid neoplasia (MN). As proof of concept for a novel, cross-validated whole-genome sequencing–based method of telomere content (TC) determination combined with mutations, transcriptomics, and functional assays, we studied TC in correlation with specific molecular features of a large cohort (N = 1804) of patients with MN, including acute myeloid leukemia (AML) and myelodysplastic syndrome. When compared with healthy participants and patients with nonclonal diseases such as persistent polyclonal B-cell lymphocytosis, both MN and nonmalignant controls with clonal disease, such as paroxysmal nocturnal hemoglobinuria and aplastic anemia, exhibited decreased TC. Furthermore, we show that TC is lowered in adult MN abrogating correlation with age with considerable TC diversification among certain morphologic and molecular subtypes. For instance, AML harbored the lowest TC. Furthermore, MN originating from a more mature cell of origin (eg, acute promyelocytic leukemia) or characterized by hyperproliferative driver mutations (eg, RAS pathway genes) had lower TC, possibly indicating a loss of telomere maintenance capacity. In contrast, compared with other mutations, MN subtypes arising in a context of profound genetic alterations, such as TP53 mutations and complex karyotype, exhibited a relatively higher/preserved TC. This phenomenon did not involve alternative lengthening processes but was rather consistent with an increased TC due to preserved activity of the telomerase complex. Our results describe a common and genotype-specific telomeric makeup of a large cohort of patients with MN providing a molecular benchmark for future therapeutic targeting of the telomere machinery.

Article Details

Journal Blood
Volume / Issue Vol. 147, Issue 2
Published January 08, 2026
Pages 197-208
ISSN 0006-4971
Publisher Elsevier BV

Journal Info

Blood

Elsevier BV

ISSN: 0006-4971 Health Sciences

Authors (22)

L

Luca Guarnera

A

Adam Wahida

C

Carmelo Gurnari

1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH

S

Stephan Hutter

4Munich Leukemia Laboratory, Munich, Germany

S

Sabine A. Stainczyk

5Hopp Children’s Cancer Center, Heidelberg, Germany

N

Nakisha D. Williams

1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH

A

Arda Durmaz

Department of Genomic Medicine, Cleveland Clinic Research

Y

Yasuo Kubota

4Department of Pediatrics, Graduate School of Medicine, The University of Tokyo, Tokyo, Japan

C

Carlos Bravo-Perez

1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH

N

Naomi Kawashima

1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH

M

Mark Orland

1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH

S

Simona Pagliuca

1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH

Y

Yimin Huang

T

Thomas LaFramboise

Department of Genetics and Genome Sciences School of Medicine, Case Western Reserve University

V

Valeria Visconte

1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH

W

Wencke Walter

4Munich Leukemia Laboratory, Munich, Germany

M

Manja Meggendorfer

46Munich Leukemia Laboratory, Munich, Germany

W

Wolfgang Kern

40MLL Munich Leukemia Laboratory, Munich, Germany

F

Frank Westermann

L

Lars Feuerbach

11Division of Applied Bioinformatics, German Cancer Research Center, German Cancer Consortium, Heidelberg, Germany

T

Torsten Haferlach

7Munich Leukemia Laboratory, Munich, Germany

J

Jaroslaw P. Maciejewski

1Translational Hematology & Oncology Research, Cleveland Clinic, Cleveland, OH