Reverse genetics in humanized mice reveals CARD8-mediated pyroptosis causing pancytopenia in human DPP9 deficiency

Loss-of-function mutation in the human gene dipeptidyl peptidase 9 ( DPP9 ) causes Hatipoglu syndrome leading to severe inflammasomopathy. A key feature of the disease is pancytopenia, and patients require bone marrow transplantation, but the mechanism of cell loss is unclear, since Dpp9 -mutant mice have normal hematopoiesis, suggesting that a distinct mechanism of disease occurs in humans. Here, we present a model of human DPP9 deficiency leveraging reverse genetics in the MISTRG6 humanized mice. We found that CRISPR editing of human CD34 + hematopoietic stem and progenitor cells (HSPCs) led to very efficient and persistent gene deletion in vivo. Human DPP9 deletion recapitulated cytopenia in peripheral blood and in the bone marrow, and cell loss was cell intrinsic. However, DPP9 deletion led to few transcriptional changes suggesting posttranscriptional regulation in human HSPCs. Mechanistically, DPP9 deficiency led to activation of the CARD8 inflammasome, resulting in HSPC pyroptosis, whereas NLRP1 was dispensable for cell death. Thus, our results reveal a unique human mechanism of disease and offer therapeutic insight for this inflammasomopathy.

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Publication Details

Journal
Journal of Clinical Investigation
Published
2026-09-14
DOI
https://doi.org/10.1172/jci207530
Primary Topic
Peptidase Inhibition and Analysis
Type
article
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article

Reverse genetics in humanized mice reveals CARD8-mediated pyroptosis causing pancytopenia in human DPP9 deficiency

Diane S. Krause, Tianli Xiao, Esen Sefik, Ailin Han et al.
Journal of Clinical Investigation
Peptidase Inhibition and Analysis
article

Reverse genetics in humanized mice reveals CARD8-mediated pyroptosis causing pancytopenia in human DPP9 deficiency

Diane S. Krause, Tianli Xiao, Esen Sefik, Ailin Han, Liang Shan, Holly N. Blackburn, Yamato Takabe, Richard A. Flavell, Qiankun Wang, Fengrui Zhang, Chia‐Yi Lee, Kristen Brennand, J. Richard Brewer, Mi Chen, Maximillian Carlino, Amin H. Nassar
article en

Abstract

Loss-of-function mutation in the human gene dipeptidyl peptidase 9 ( DPP9 ) causes Hatipoglu syndrome leading to severe inflammasomopathy. A key feature of the disease is pancytopenia, and patients require bone marrow transplantation, but the mechanism of cell loss is unclear, since Dpp9 -mutant mice have normal hematopoiesis, suggesting that a distinct mechanism of disease occurs in humans. Here, we present a model of human DPP9 deficiency leveraging reverse genetics in the MISTRG6 humanized mice. We found that CRISPR editing of human CD34 + hematopoietic stem and progenitor cells (HSPCs) led to very efficient and persistent gene deletion in vivo. Human DPP9 deletion recapitulated cytopenia in peripheral blood and in the bone marrow, and cell loss was cell intrinsic. However, DPP9 deletion led to few transcriptional changes suggesting posttranscriptional regulation in human HSPCs. Mechanistically, DPP9 deficiency led to activation of the CARD8 inflammasome, resulting in HSPC pyroptosis, whereas NLRP1 was dispensable for cell death. Thus, our results reveal a unique human mechanism of disease and offer therapeutic insight for this inflammasomopathy.

Journal of Clinical InvestigationVol. 136(18)
Howard Hughes Medical Institute (US), Yale Cancer Center (US), Yale University (US), Shenzhen Bay Laboratory (CN), Shenzhen Genoimmune Medical Institute (CN)
Good health and well-being
Openalex Percentile: Top 13%
Peptidase Inhibition and Analysis
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