Running alongside chimerism is a more conventional rival that has lately moved faster: xenotransplantation, the transplant of organs from gene-edited animals — overwhelmingly pigs — directly into human recipients, with the animal’s antigens engineered away to blunt rejection. Where complementation aspires to grow an organ that is genetically the patient’s, xenotransplantation accepts a foreign organ and manages the immune consequence; the two are best read as complementary bets on the same shortage, with xenotransplantation nearer the clinic and complementation further from it but, in principle, freer of lifelong immunosuppression. The porcine stem-cell tools that serve complementation serve xenotransplantation too (Shi et al., 2026), and a route such as hepatocyte therapy may end up partnering with both rather than displacing either (Sun et al., 2026). Table 9.1 sets the two frontier strategies side by side; their economic and ethical dimensions — the cost of a manufactured organ, the justice of its distribution, the status of a human–animal chimera — belong to Chapters 13 and 14.
Bailey, D. D., & Que, J. (2026). Closing the gap: Toward functional, bioengineered esophageal grafts.
Cell Stem Cell,
33(6), 904–906.
https://doi.org/10.1016/j.stem.2026.04.019
Bautista, J., & López-Cortés, A. (2026). Mitochondrial drivers of stem cell aging and inflammaging.
Npj Aging.
https://doi.org/10.1038/s41514-026-00422-5
Bigliardi, E., Shetty, A. V., Low, W. C., & Steer, C. J. (2025). Interspecies blastocyst complementation and the genesis of chimeric solid human organs.
Genes,
16(2), 215.
https://doi.org/10.3390/genes16020215
Cui, J., Li, X., Liu, B., Dong, C., & Chang, Y. (2025). Hematopoietic stem cell aging: Mechanisms, microenvironment influences, and rejuvenation strategies.
Bioengineering,
12(11), 1166.
https://doi.org/10.3390/bioengineering12111166
Durkin, N., Hall, G. T., Lutman, R., Scuglia, M., Xenakis, T., Patera, G., Di Biagio, D., Yamada, K., Tullie, L., Scaglioni, D., Shibuya, S., Nikaki, K., Beesley, M. A., Saleh, T., Garrido Flores, M., Borselle, D., Karaluka, V., Hutchinson, J. C., Khalaf, S., … De Coppi, P. (2026). Functional integration of an autologous engineered esophagus in a large-animal model.
Nature Biotechnology.
https://doi.org/10.1038/s41587-026-03043-1
Guo, L., Ge, L., Li, Y., Wang, S., Li, H., Wang, X., Qian, W., Zhang, Y., Guo, L., Guo, L., Cheng, R., Ji, W., Fu, W., Zhang, L., & Zhang, R. (2026). Age-mimicking hydrogel stiffness recapitulates the mechanical niche of the hippocampus to regulate neural stem cell senescence.
Materials Today Bio,
37, 102985.
https://doi.org/10.1016/j.mtbio.2026.102985
Kim, S., Pack, S. P., & Rando, T. A. (2026). Transcriptomic advances in studies of muscle stem cell aging: From bulk to single-cell and beyond.
Cell Research,
36(5), 313–321.
https://doi.org/10.1038/s41422-026-01240-w
Kumar, M., Ray, S., & Sil, S. (2025). Stem-cell-derived extracellular vesicles in neurodegeneration and neuroaging: Therapeutic potential and challenges.
Extracellular Vesicles and Circulating Nucleic Acids,
6(3), 594–608.
https://doi.org/10.20517/evcna.2025.65
Lei, J., Xin, Z., Liu, N., Ning, T., Jing, Y., Qiao, Y., He, Z., Jiang, M., Yang, Y., Zhang, Z., Zhao, L., Li, J., Lv, D., Yan, Y., Zhang, H., Xiao, L., Zhang, B., Huang, H., Sun, S., … Liu, G.-H. (2025). Senescence-resistant human mesenchymal progenitor cells counter aging in primates.
Cell,
188(18), 5039–5061.
https://doi.org/10.1016/j.cell.2025.05.021
Lettera, E., Basso-Ricci, L., Carsana, E., Giannetti, K., Tavella, T., Seffin, L., Farina, G., Gualandi, N., Quaranta, P., Lo Furno, E., Pacini, G., Della Volpe, L., Kaufmann, K. B., Garcia-Prat, L., Hernandez, R. J., Murison, A., Aguilar-Navarro, A. G., Beretta, S., Conti, A., … Di Micco, R. (2026). Molecular and phenotypic blueprint of human hematopoiesis links proliferation stress to stem cell aging.
Journal of Experimental Medicine,
223(2), e20251805.
https://doi.org/10.1084/jem.20251805
Li, H., Xu, N., Li, S., Wang, X., Li, A., Wang, H., Wu, S., Zhou, S., Cai, C., & Zhang, T. (2025). Exosomes derived from umbilical cord mesenchymal stem cells alleviate jaw bone marrow mesenchymal stem cells senescence and restore osteogenic differentiation potential.
Stem Cell Research & Therapy,
16(1), 475.
https://doi.org/10.1186/s13287-025-04587-w
Li, J., Xu, C., Shi, B., Lyu, Y., Lin, Z., Shi, W., Xu, J., Zou, X., Wang, X., Zhao, H., Zhao, C., & Pei, D. (2026). In vitro mimicking of humanized cardiogenesis under porcine condition.
Cell & Bioscience,
16(1), 22.
https://doi.org/10.1186/s13578-025-01521-8
Liu, A., Liu, X., Li, J., Li, J., Wang, X., Dong, Y., Shao, F., Bi, M., Deng, X., Wang, G., & Wang, Y. (2026). Detection of mesenchymal stem cell aging using an integrin mechano-probe.
Annals of the New York Academy of Sciences,
1558(1), e70247.
https://doi.org/10.1111/nyas.70247
López-Otín, C., Blasco, M. A., Partridge, L., Serrano, M., & Kroemer, G. (2023). Hallmarks of aging: An expanding universe.
Cell,
186(2), 243–278.
https://doi.org/10.1016/j.cell.2022.11.001
Lu, J. Y., Tu, W. B., Li, R., Weng, M., Sanketi, B. D., Yuan, B., Reddy, P., Rodriguez Esteban, C., & Izpisua Belmonte, J. C. (2025). Prevalent mesenchymal drift in aging and disease is reversed by partial reprogramming.
Cell,
188(21), 5895–5911.e17.
https://doi.org/10.1016/j.cell.2025.07.031
Mejía-Ramírez, E., Picazo, P. I., Walter, B., Montserrat-Vazquez, S., Affuso, F., Wieser, S., Pezzano, F., Reymond, L., Castillo-Robles, J., Matteini, F., Mularoni, L., Maciá, D., Raya, Á., Ruprecht, V., Zheng, Y., Petrone, P., & Florian, M. C. (2026). Targeting
RhoA nuclear mechanoactivity rejuvenates aged hematopoietic stem cells.
Nature Aging,
6(1), 68–87.
https://doi.org/10.1038/s43587-025-01014-w
Rando, T. A., Brunet, A., & Goodell, M. A. (2025). Hallmarks of stem cell aging.
Cell Stem Cell,
32(7), 1038–1054.
https://doi.org/10.1016/j.stem.2025.06.004
Shi, B., Li, J., Wang, X., Liu, D., Xiang, J., Wang, H., Xu, C., Zou, X., Wang, Z., Huang, T., Min, Q., Wang, K., Yang, Y., Li, J., Wang, B., Zhao, C., & Pei, D. (2026). Generating high-quality porcine
iPSCs with the new medium cocktail
LACID.
Stem Cell Reports,
21(3), 102790.
https://doi.org/10.1016/j.stemcr.2026.102790
Siddique, A., Shakir, I. M., & Li, M. (2025). Attenuation of primate aging via systemic infusion of senescence-resistant mesenchymal progenitor cells.
Cell Regeneration,
14(1), 27.
https://doi.org/10.1186/s13619-025-00248-8
Sun, Z., Zhang, L., & Hui, L. (2026). Advancing hepatocyte-based therapies: A translational perspective.
Cell Stem Cell,
33(5), 726–746.
https://doi.org/10.1016/j.stem.2026.04.007
Wang, B., Tebon, P. J., Nguyen, T. L., Murray, G. F., Guest, D. C., Reed, J., Sartini, S., Soragni, A., & Teitell, M. A. (2026). Label-free interferometry platform for drug response profiling of bioprinted tumor organoids at single-organoid resolution.
Nature Protocols.
https://doi.org/10.1038/s41596-026-01375-5
Yang, J.-H., Hayano, M., Griffin, P. T., Amorim, J. A., Bonkowski, M. S., Apostolides, J. K., & Sinclair, D. A. (2023). Loss of epigenetic information as a cause of mammalian aging.
Cell,
186(2), 305–326.e27.
https://doi.org/10.1016/j.cell.2022.12.027
Yuri, S., Arisawa, N., Kitamuro, K., & Isotani, A. (2024). Blastocyst complementation-based rat-derived heart generation reveals cardiac anomaly barriers to interspecies chimera development.
iScience,
27(12), 111414.
https://doi.org/10.1016/j.isci.2024.111414
Zhang, Z., Wang, Z., Zhu, L., Chen, T., Chen, R., Wu, Z., Chen, J., Zhang, H., Wang, M., Liu, J., Hua, N., Hu, S., & Chen, Y. (2026). Asprosin-driven metabolic-epigenetic rewiring attenuates mesenchymal stem cell senescence with therapeutic benefits for infarcted hearts.
Journal of Advanced Research.
https://doi.org/10.1016/j.jare.2026.01.073