Key applications of iPSC technology in hemato-oncology are summarized, its major advantages and current limitations are discussed, and emerging directions are highlighted, including scalable iPSC-derived blood cell therapies for inherited and acquired bone marrow failure syndromes and leukemia.
Abstract
The pioneering discovery by Yamanaka and colleagues enabling the reprogramming of terminally differentiated somatic cells into induced pluripotent stem cells (iPSCs) has opened transformative opportunities for disease modeling and regenerative medicine, particularly in the context of inherited monogenic disorders. Patient-specific iPSCs can be generated, expanded almost indefinitely, and differentiated into a broad spectrum of cell types, including hematopoietic stem and progenitor cells, mature myeloid cells, and leukemic cells. Despite important limitations – such as epigenetic memory, variable differentiation efficiency, and concerns regarding tumorigenicity – iPSCs have become an indispensable experimental platform for studying inherited hematological disorders and malignancies, providing a renewable and physiologically relevant source of cells for downstream analyses. Beyond their research applications, iPSC-derived blood cells are increasingly being explored in preclinical studies and early-phase clinical trials as potential therapeutic products. The advent of CRISPR/Cas9 genome editing, pioneered by Charpentier and Doudna, has further advanced iPSC-based models by enabling precise correction or introduction of disease-causing mutations and the generation of isogenic control lines. This approach facilitates detailed mechanistic studies of defective hematopoiesis, enables drug discovery and repurposing through in silico screening platforms – such as L1000CDS2 and the Connectivity Map – and supports preclinical therapeutic validation. In this review, we summarize key applications of iPSC technology in hemato-oncology, discuss its major advantages and current limitations, and highlight emerging directions, including scalable iPSC-derived blood cell therapies for inherited and acquired bone marrow failure syndromes and leukemia.
This review summarizes research with a focus on clinical translation of iPSC-derived immune cells, as well as highlights continued challenges and prospects of this field.
Luisjesus S Cruz, Alejandro R. Castañeda, Dan S Kaufman· Stem Cells· 0 citations
Recognising the central role of VSELs/progenitors and their niche in maintaining tissue homeostasis in vivo could resolve existing roadblocks and guide more effective endogenous regenerative therapies for diseased tissues and age-related dysfunctions.
D. Bhartiya, N. Sharma, Anish Tripathi et al.· Stem Cell Reviews and Report...· 0 citations
This review discusses how organoids and OoC-based platforms are being leveraged to study and enhance cell fate reprogramming, repair, and regeneration across multiple tissues and outlines current limitations, including scalability, standardization, and biomaterial constraints.
Hrithiha Sriramulu, Hyunsung Woo, Anavi Kaul et al.· Current Opinion in Genetics...· 1 citation
This paper will provide the current information on stem cells used in the treatment of children and the many different types of stem cells, including: hematopoietic stem cells (and their derivatives), mesenchymal stem cells (and their derivatives), induced pluripotent stem cells, embryonic stem cells, tissue-specific progenitor cells, extracellular vesicles, and bioengineered products.
Hany E. Marei· Stem cell research & therape...· 0 citations
Induced pluripotent stem cells (also known as iPS cells or iPSCs) are a type of pluripotent stem cell that can be generated directly from a somatic cell. The iPSC technology was pioneered by Shinya Yamanaka’s lab in Kyoto, Japan, who showed in 2006 that the introduction of four specific genes (named Myc, Oct3/4, Sox2 and Klf4) encoding transcription factors could convert somatic cells into pluripotent stem cells. He was awarded the 2012 Nobel Prize along with Sir John Gurdon "for the discovery that mature cells can be reprogrammed to become pluripotent."
Pluripotent stem cells hold promise in the field of regenerative medicine. Because they can propagate indefinitely, as well as give rise to every other cell type in the body (such as neurons, heart, pancreatic, and liver cells), they represent a single source of cells that could be used to replace those lost to damage or disease.