Hematopoietic stem cells (HSCs) are multipotent stem cells capable of differentiating into all types of blood and immune progeny and endowed with self-renewal capacity to enable lifelong hematopoiesis. Based on these unique characteristics, HSCs are utilized as a cell source for cell and gene therapies. During its dawning period, HSC-based therapies faced significant challenges due to inefficient gene transfer and insertional leukemogenesis. However, technological advances, such as the use of HIV-derived lentiviral vectors and cellular promoters, have established HSC gene therapy as a powerful treatment modality for patients with congenital monogenic diseases, leading to approved therapies commercially available in Europe and the United States. HSC-based therapies are now being explored for broader indications, including cancer, autoimmune, and infectious diseases. Innovative concepts achievable with HSCs-such as delivering therapeutic proteins to hard-to-reach tissues, in vivo delivery of antibodies and immune cells, and molecular shielding-have been proposed, offering new therapeutic approaches. Moreover, technological innovations in related fields, including more precise gene expression control and reduced-toxicity bone marrow conditioning, are expanding the range of applications. HSC-based cell and gene therapies are therefore evolving into a therapeutic modality applicable beyond monogenic diseases to a broader range of indications, to provide therapeutic value to patients with intractable diseases.
Kai et al. (Mon,) studied this question.