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Human Bone Marrow Organoids for Disease Modeling, Discovery, and Validation of Therapeutic Targets in Hematologic Malignancies

A lack of models that recapitulate the complexity of human bone marrow has hampered mechanistic studies of normal and malignant hematopoiesis and the validation of novel therapies. Here, we describe a step-wise, directed-differentiation protocol in which organoids are generated from induced pluripot...

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Autores principales: Khan, Abdullah O., Rodriguez-Romera, Antonio, Reyat, Jasmeet S., Olijnik, Aude-Anais, Colombo, Michela, Wang, Guanlin, Wen, Wei Xiong, Sousos, Nikolaos, Murphy, Lauren C., Grygielska, Beata, Perrella, Gina, Mahony, Christopher B., Ling, Rebecca E., Elliott, Natalina E., Karali, Christina Simoglou, Stone, Andrew P., Kemble, Samuel, Cutler, Emily A., Fielding, Adele K., Croft, Adam P., Bassett, David, Poologasundarampillai, Gowsihan, Roy, Anindita, Gooding, Sarah, Rayes, Julie, Machlus, Kellie R., Psaila, Bethan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for Cancer Research 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9900323/
https://www.ncbi.nlm.nih.gov/pubmed/36351055
http://dx.doi.org/10.1158/2159-8290.CD-22-0199
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author Khan, Abdullah O.
Rodriguez-Romera, Antonio
Reyat, Jasmeet S.
Olijnik, Aude-Anais
Colombo, Michela
Wang, Guanlin
Wen, Wei Xiong
Sousos, Nikolaos
Murphy, Lauren C.
Grygielska, Beata
Perrella, Gina
Mahony, Christopher B.
Ling, Rebecca E.
Elliott, Natalina E.
Karali, Christina Simoglou
Stone, Andrew P.
Kemble, Samuel
Cutler, Emily A.
Fielding, Adele K.
Croft, Adam P.
Bassett, David
Poologasundarampillai, Gowsihan
Roy, Anindita
Gooding, Sarah
Rayes, Julie
Machlus, Kellie R.
Psaila, Bethan
author_facet Khan, Abdullah O.
Rodriguez-Romera, Antonio
Reyat, Jasmeet S.
Olijnik, Aude-Anais
Colombo, Michela
Wang, Guanlin
Wen, Wei Xiong
Sousos, Nikolaos
Murphy, Lauren C.
Grygielska, Beata
Perrella, Gina
Mahony, Christopher B.
Ling, Rebecca E.
Elliott, Natalina E.
Karali, Christina Simoglou
Stone, Andrew P.
Kemble, Samuel
Cutler, Emily A.
Fielding, Adele K.
Croft, Adam P.
Bassett, David
Poologasundarampillai, Gowsihan
Roy, Anindita
Gooding, Sarah
Rayes, Julie
Machlus, Kellie R.
Psaila, Bethan
author_sort Khan, Abdullah O.
collection PubMed
description A lack of models that recapitulate the complexity of human bone marrow has hampered mechanistic studies of normal and malignant hematopoiesis and the validation of novel therapies. Here, we describe a step-wise, directed-differentiation protocol in which organoids are generated from induced pluripotent stem cells committed to mesenchymal, endothelial, and hematopoietic lineages. These 3D structures capture key features of human bone marrow—stroma, lumen-forming sinusoids, and myeloid cells including proplatelet-forming megakaryocytes. The organoids supported the engraftment and survival of cells from patients with blood malignancies, including cancer types notoriously difficult to maintain ex vivo. Fibrosis of the organoid occurred following TGFβ stimulation and engraftment with myelofibrosis but not healthy donor–derived cells, validating this platform as a powerful tool for studies of malignant cells and their interactions within a human bone marrow–like milieu. This enabling technology is likely to accelerate the discovery and prioritization of novel targets for bone marrow disorders and blood cancers. SIGNIFICANCE: We present a human bone marrow organoid that supports the growth of primary cells from patients with myeloid and lymphoid blood cancers. This model allows for mechanistic studies of blood cancers in the context of their microenvironment and provides a much-needed ex vivo tool for the prioritization of new therapeutics. See related commentary by Derecka and Crispino, p. 263. This article is highlighted in the In This Issue feature, p. 247
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spelling pubmed-99003232023-02-08 Human Bone Marrow Organoids for Disease Modeling, Discovery, and Validation of Therapeutic Targets in Hematologic Malignancies Khan, Abdullah O. Rodriguez-Romera, Antonio Reyat, Jasmeet S. Olijnik, Aude-Anais Colombo, Michela Wang, Guanlin Wen, Wei Xiong Sousos, Nikolaos Murphy, Lauren C. Grygielska, Beata Perrella, Gina Mahony, Christopher B. Ling, Rebecca E. Elliott, Natalina E. Karali, Christina Simoglou Stone, Andrew P. Kemble, Samuel Cutler, Emily A. Fielding, Adele K. Croft, Adam P. Bassett, David Poologasundarampillai, Gowsihan Roy, Anindita Gooding, Sarah Rayes, Julie Machlus, Kellie R. Psaila, Bethan Cancer Discov Research Articles A lack of models that recapitulate the complexity of human bone marrow has hampered mechanistic studies of normal and malignant hematopoiesis and the validation of novel therapies. Here, we describe a step-wise, directed-differentiation protocol in which organoids are generated from induced pluripotent stem cells committed to mesenchymal, endothelial, and hematopoietic lineages. These 3D structures capture key features of human bone marrow—stroma, lumen-forming sinusoids, and myeloid cells including proplatelet-forming megakaryocytes. The organoids supported the engraftment and survival of cells from patients with blood malignancies, including cancer types notoriously difficult to maintain ex vivo. Fibrosis of the organoid occurred following TGFβ stimulation and engraftment with myelofibrosis but not healthy donor–derived cells, validating this platform as a powerful tool for studies of malignant cells and their interactions within a human bone marrow–like milieu. This enabling technology is likely to accelerate the discovery and prioritization of novel targets for bone marrow disorders and blood cancers. SIGNIFICANCE: We present a human bone marrow organoid that supports the growth of primary cells from patients with myeloid and lymphoid blood cancers. This model allows for mechanistic studies of blood cancers in the context of their microenvironment and provides a much-needed ex vivo tool for the prioritization of new therapeutics. See related commentary by Derecka and Crispino, p. 263. This article is highlighted in the In This Issue feature, p. 247 American Association for Cancer Research 2023-02-06 2022-11-09 /pmc/articles/PMC9900323/ /pubmed/36351055 http://dx.doi.org/10.1158/2159-8290.CD-22-0199 Text en ©2022 The Authors; Published by the American Association for Cancer Research https://creativecommons.org/licenses/by/4.0/This open access article is distributed under the Creative Commons Attribution 4.0 International (CC BY 4.0) license.
spellingShingle Research Articles
Khan, Abdullah O.
Rodriguez-Romera, Antonio
Reyat, Jasmeet S.
Olijnik, Aude-Anais
Colombo, Michela
Wang, Guanlin
Wen, Wei Xiong
Sousos, Nikolaos
Murphy, Lauren C.
Grygielska, Beata
Perrella, Gina
Mahony, Christopher B.
Ling, Rebecca E.
Elliott, Natalina E.
Karali, Christina Simoglou
Stone, Andrew P.
Kemble, Samuel
Cutler, Emily A.
Fielding, Adele K.
Croft, Adam P.
Bassett, David
Poologasundarampillai, Gowsihan
Roy, Anindita
Gooding, Sarah
Rayes, Julie
Machlus, Kellie R.
Psaila, Bethan
Human Bone Marrow Organoids for Disease Modeling, Discovery, and Validation of Therapeutic Targets in Hematologic Malignancies
title Human Bone Marrow Organoids for Disease Modeling, Discovery, and Validation of Therapeutic Targets in Hematologic Malignancies
title_full Human Bone Marrow Organoids for Disease Modeling, Discovery, and Validation of Therapeutic Targets in Hematologic Malignancies
title_fullStr Human Bone Marrow Organoids for Disease Modeling, Discovery, and Validation of Therapeutic Targets in Hematologic Malignancies
title_full_unstemmed Human Bone Marrow Organoids for Disease Modeling, Discovery, and Validation of Therapeutic Targets in Hematologic Malignancies
title_short Human Bone Marrow Organoids for Disease Modeling, Discovery, and Validation of Therapeutic Targets in Hematologic Malignancies
title_sort human bone marrow organoids for disease modeling, discovery, and validation of therapeutic targets in hematologic malignancies
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9900323/
https://www.ncbi.nlm.nih.gov/pubmed/36351055
http://dx.doi.org/10.1158/2159-8290.CD-22-0199
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