Year 2026,
Volume: 15 Issue: 1
,
1
-
14
,
30.04.2026
Remzi Yunus Emre Doğan
,
Ebru Ceren Fidan
,
Koray Yılmaz
References
-
S. Eilenberg, S. Mac Lane, General theory of natural equivalences, Transactions of the American
Mathematical Society 58 (2) (1945) 231–294.
-
S. Mac Lane, Categories for the working mathematician, 2nd Edition, Springer, 1978.
-
R. Rosen, Essays on life Itself, Columbia University Press, 2000.
-
A. H. Louie, More Than Life Itself: A Synthetic Continuation in Relational Biology, Walter de Gruyter, 2013.
-
F. W. Lawvere, S. H. Schanuel, Conceptual mathematics: A first introduction to categories, Cambridge University Press, 2009.
-
R. Rosen, The representation of biological systems from the standpoint of the theory of categories, Bulletin of Mathematical Biophysics 20 (4) (1958) 317–341.
-
A. C. Ehresmann, J. P. Vanbremeersch, Memory evolutive systems: Hierarchy, emergence, cognition, Elsevier, 2007.
-
N. Rashevsky, Topology and life: In search of general mathematical principles in biology and sociology, Bulletin of Mathematical Biophysics 16 (4) (1954) 317–348.
-
R. Rosen, A relational theory of biological systems II , Bulletin of Mathematical Biophysics 21 (1959) 109–128.
-
C. H. Waddington, The strategy of the genes, Allen & Unwin, 1957.
-
A. C. Ehresmann, J. P. Vanbremeersch, Hierarchical evolutive systems: A mathematical model for complex systems, Bulletin of Mathematical Biology 49 (1) (1987) 13–50.
-
D. I. Spivak, Category theory for the sciences, MIT Press, 2014.
-
A. D. M Nuto, Categorical foundations of biology: Revisiting robert rosen, Master’s Thesis Innsbruck University (2025) Innsbruck.
-
S. Awodey, Category theory, 2nd Edition, Oxford University Press, 2010.
-
T. Leinster, Basic category theory, Cambridge University Press, 2014.
-
D. Pajalunga, M. Crescenzi, Restoring the cell cycle and proliferation competence in terminally differentiated skeletal muscle myotubes, Cells 10 (10) (2021) 2753.
-
A. Cie´slar-Pobuda, V. Knoflach, M. V. Ringh, J. Stark, W. Likus, K. Siemianowicz, S. Ghavami, A. Hudecki, J. L. Green, M. J. Los, Transdifferentiation and reprogramming: Overview of the processes, their similarities and differences, Biochimica et Biophysica Acta Molecular Cell Research 1864 (7) (2017) 1359–1369.
-
J. Cerneckis, H. Cai, Y. Shi, Induced pluripotent stem cells (iPSCs): Molecular mechanisms of induction and applications, Signal Transduction and Targeted Therapy 9 (2024) 112.
-
Y. Yao, C. Wang, Dedifferentiation: Inspiration for devising engineering strategies for regenerative medicine, NPJ Regenerative Medicine 5 (2020) 14.
-
M. J. Evans, M. H. Kaufman, Establishment in culture of pluripotential cells from mouse embryos, Nature 292 (1981) 154–156.
-
K. Takahashi, S. Yamanaka, Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures, Cell 126 (2006) 663–676.
-
B. Pijuan-Sala, J. A. Griffiths, C. Guibentif, T. W. Hiscock, W. Jawaid, F. J. Calero-Nieto, C. Mulas, X. Ibarra-Soria, R. C. V. Tyser, …, B. Göttgens, A single-cell molecular map of mouse gastrulation and early organogenesis, Nature 566 (7745) (2019) 490–495.
-
S. Elmore, Apoptosis: a review of programmed cell death, Toxicologic Pathology 35 (4) (2007) 495–516.
-
M. A. Jafri, S. A. Ansari, M. H. Alqahtani, J. W. Shay, Roles of telomeres and telomerase in cancer, and advances in telomerase-targeted therapies, Genome Medicine 8 (2016) 69.
-
D. Hanahan, R. A. Weinberg, Hallmarks of cancer: The next generation, Cell 144 (5) (2011), 646–674.
-
T. Vierbuchen, A. Ostermeier, Z. P. Pang, Y. Kokubu, T. C. S¨udhof, M. Wernig, Direct conversion of fibroblasts to functional neurons by defined factors, Nature 463 (2010) 1035–1041.
-
K. Izgi, H. Canatan, B. Iskender, Current status in cancer cell reprogramming and its clinical implications, Journal of Cancer Research and Clinical Oncology 143 (3) (2017) 371-383.
-
X. Fu, Q. Zhuang, I. A. Babarinde, L. Shi, G. Ma, H. Hu, Y. Li, J. Chen, Z. Xiao, …, A. P. Hutchins, Restricting epigenetic activity promotes the reprogramming of transformed cells to pluripotency in a line-specific manner, Cell Death Discovery 9 (2023) 245.
-
A. Shamsian, R. Sahebnasagh, A. Norouzy, S. H. Hussein, M. H. Ghahremani, Z. Azizi, Cancer cells as a new source of induced pluripotent stem cells, Stem Cell Research & Therapy 13 (1) (2022) 459.
-
E. S. Yılmaz, (Co)limit calculations in the category of 2-crossed R-modules, Turkish Journal of Mathematics 46 (7) (2022) 2902–2915.
-
E. S. Yılmaz, K. Yılmaz, On crossed squares of commutative algebras, Mathematical Sciences and Applications E-Notes 8 (2) (2020) 32–41.
-
K. Yılmaz, E. S. Yılmaz, Baues cofibration for quadratic modules of Lie algebras, Communications Faculty of Sciences University of Ankara Series A1 Mathematics and Statistics 68 (1) (2020) 751–763.
A Categorical Model of Cellular Differentiation and Reprogramming
Year 2026,
Volume: 15 Issue: 1
,
1
-
14
,
30.04.2026
Remzi Yunus Emre Doğan
,
Ebru Ceren Fidan
,
Koray Yılmaz
Abstract
This study proposes a new way of understanding cell transformations by using category theory to build a formal structure called the Category of Cells (CELL). Rather than treating cellular processes in isolation, the framework organizes cells and their transformations within a unified mathematical setting. The study examines fundamental categorical properties of CELL such as the existence of initial and terminal objects and its connectedness to better understand structural relationships between different cell types. To elucidate cellular hierarchies and potential transformation processes, biologically relevant subcategories are investigated, such as terminally differentiated cells and differentiated somatic cells. The structure represents intricate biological processes including cell differentiation, cellular reprogramming, and oncogenesis using categorical tools like slice categories and arrow categories.
References
-
S. Eilenberg, S. Mac Lane, General theory of natural equivalences, Transactions of the American
Mathematical Society 58 (2) (1945) 231–294.
-
S. Mac Lane, Categories for the working mathematician, 2nd Edition, Springer, 1978.
-
R. Rosen, Essays on life Itself, Columbia University Press, 2000.
-
A. H. Louie, More Than Life Itself: A Synthetic Continuation in Relational Biology, Walter de Gruyter, 2013.
-
F. W. Lawvere, S. H. Schanuel, Conceptual mathematics: A first introduction to categories, Cambridge University Press, 2009.
-
R. Rosen, The representation of biological systems from the standpoint of the theory of categories, Bulletin of Mathematical Biophysics 20 (4) (1958) 317–341.
-
A. C. Ehresmann, J. P. Vanbremeersch, Memory evolutive systems: Hierarchy, emergence, cognition, Elsevier, 2007.
-
N. Rashevsky, Topology and life: In search of general mathematical principles in biology and sociology, Bulletin of Mathematical Biophysics 16 (4) (1954) 317–348.
-
R. Rosen, A relational theory of biological systems II , Bulletin of Mathematical Biophysics 21 (1959) 109–128.
-
C. H. Waddington, The strategy of the genes, Allen & Unwin, 1957.
-
A. C. Ehresmann, J. P. Vanbremeersch, Hierarchical evolutive systems: A mathematical model for complex systems, Bulletin of Mathematical Biology 49 (1) (1987) 13–50.
-
D. I. Spivak, Category theory for the sciences, MIT Press, 2014.
-
A. D. M Nuto, Categorical foundations of biology: Revisiting robert rosen, Master’s Thesis Innsbruck University (2025) Innsbruck.
-
S. Awodey, Category theory, 2nd Edition, Oxford University Press, 2010.
-
T. Leinster, Basic category theory, Cambridge University Press, 2014.
-
D. Pajalunga, M. Crescenzi, Restoring the cell cycle and proliferation competence in terminally differentiated skeletal muscle myotubes, Cells 10 (10) (2021) 2753.
-
A. Cie´slar-Pobuda, V. Knoflach, M. V. Ringh, J. Stark, W. Likus, K. Siemianowicz, S. Ghavami, A. Hudecki, J. L. Green, M. J. Los, Transdifferentiation and reprogramming: Overview of the processes, their similarities and differences, Biochimica et Biophysica Acta Molecular Cell Research 1864 (7) (2017) 1359–1369.
-
J. Cerneckis, H. Cai, Y. Shi, Induced pluripotent stem cells (iPSCs): Molecular mechanisms of induction and applications, Signal Transduction and Targeted Therapy 9 (2024) 112.
-
Y. Yao, C. Wang, Dedifferentiation: Inspiration for devising engineering strategies for regenerative medicine, NPJ Regenerative Medicine 5 (2020) 14.
-
M. J. Evans, M. H. Kaufman, Establishment in culture of pluripotential cells from mouse embryos, Nature 292 (1981) 154–156.
-
K. Takahashi, S. Yamanaka, Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures, Cell 126 (2006) 663–676.
-
B. Pijuan-Sala, J. A. Griffiths, C. Guibentif, T. W. Hiscock, W. Jawaid, F. J. Calero-Nieto, C. Mulas, X. Ibarra-Soria, R. C. V. Tyser, …, B. Göttgens, A single-cell molecular map of mouse gastrulation and early organogenesis, Nature 566 (7745) (2019) 490–495.
-
S. Elmore, Apoptosis: a review of programmed cell death, Toxicologic Pathology 35 (4) (2007) 495–516.
-
M. A. Jafri, S. A. Ansari, M. H. Alqahtani, J. W. Shay, Roles of telomeres and telomerase in cancer, and advances in telomerase-targeted therapies, Genome Medicine 8 (2016) 69.
-
D. Hanahan, R. A. Weinberg, Hallmarks of cancer: The next generation, Cell 144 (5) (2011), 646–674.
-
T. Vierbuchen, A. Ostermeier, Z. P. Pang, Y. Kokubu, T. C. S¨udhof, M. Wernig, Direct conversion of fibroblasts to functional neurons by defined factors, Nature 463 (2010) 1035–1041.
-
K. Izgi, H. Canatan, B. Iskender, Current status in cancer cell reprogramming and its clinical implications, Journal of Cancer Research and Clinical Oncology 143 (3) (2017) 371-383.
-
X. Fu, Q. Zhuang, I. A. Babarinde, L. Shi, G. Ma, H. Hu, Y. Li, J. Chen, Z. Xiao, …, A. P. Hutchins, Restricting epigenetic activity promotes the reprogramming of transformed cells to pluripotency in a line-specific manner, Cell Death Discovery 9 (2023) 245.
-
A. Shamsian, R. Sahebnasagh, A. Norouzy, S. H. Hussein, M. H. Ghahremani, Z. Azizi, Cancer cells as a new source of induced pluripotent stem cells, Stem Cell Research & Therapy 13 (1) (2022) 459.
-
E. S. Yılmaz, (Co)limit calculations in the category of 2-crossed R-modules, Turkish Journal of Mathematics 46 (7) (2022) 2902–2915.
-
E. S. Yılmaz, K. Yılmaz, On crossed squares of commutative algebras, Mathematical Sciences and Applications E-Notes 8 (2) (2020) 32–41.
-
K. Yılmaz, E. S. Yılmaz, Baues cofibration for quadratic modules of Lie algebras, Communications Faculty of Sciences University of Ankara Series A1 Mathematics and Statistics 68 (1) (2020) 751–763.