Skip to main page content
U.S. flag

An official website of the United States government

Dot gov

The .gov means it’s official.
Federal government websites often end in .gov or .mil. Before sharing sensitive information, make sure you’re on a federal government site.

Https

The site is secure.
The https:// ensures that you are connecting to the official website and that any information you provide is encrypted and transmitted securely.

Access keys NCBI Homepage MyNCBI Homepage Main Content Main Navigation
Review
. 2022 Aug;116(4):407-445.
doi: 10.1007/s00422-022-00935-8. Epub 2022 Jun 9.

Dissecting cell fate dynamics in pediatric glioblastoma through the lens of complex systems and cellular cybernetics

Affiliations
Review

Dissecting cell fate dynamics in pediatric glioblastoma through the lens of complex systems and cellular cybernetics

Abicumaran Uthamacumaran. Biol Cybern. 2022 Aug.

Abstract

Cancers are complex dynamic ecosystems. Reductionist approaches to science are inadequate in characterizing their self-organized patterns and collective emergent behaviors. Since current approaches to single-cell analysis in cancer systems rely primarily on single time-point multiomics, many of the temporal features and causal adaptive behaviors in cancer dynamics are vastly ignored. As such, tools and concepts from the interdisciplinary paradigm of complex systems theory are introduced herein to decode the cellular cybernetics of cancer differentiation dynamics and behavioral patterns. An intuition for the attractors and complex networks underlying cancer processes such as cell fate decision-making, multiscale pattern formation systems, and epigenetic state-transitions is developed. The applications of complex systems physics in paving targeted therapies and causal pattern discovery in precision oncology are discussed. Pediatric high-grade gliomas are discussed as a model-system to demonstrate that cancers are complex adaptive systems, in which the emergence and selection of heterogeneous cellular states and phenotypic plasticity are driven by complex multiscale network dynamics. In specific, pediatric glioblastoma (GBM) is used as a proof-of-concept model to illustrate the applications of the complex systems framework in understanding GBM cell fate decisions and decoding their adaptive cellular dynamics. The scope of these tools in forecasting cancer cell fate dynamics in the emerging field of computational oncology and patient-centered systems medicine is highlighted.

Keywords: Artificial intelligence; Attractors; Cancer; Cellular decision-making; Complex systems; Computational medicine; Cybernetics; Epigenetics; Networks; Systems oncology.

PubMed Disclaimer

Similar articles

Cited by

References

    1. Alban TJ, Bayik D, Otvos B, Rabljenovic A, Leng L, Jia-Shiun L, Roversi G, Lauko A, Momin AA, Mohammadi AM, Peereboom DM, Ahluwalia MS, Matsuda K, Yun K, Bucala R, Vogelbaum MA, Lathia JD (2020) Glioblastoma myeloid-derived suppressor cell subsets express differential macrophage migration inhibitory factor receptor profiles that can be targeted to reduce immune suppression. Front Immunol 11:1191. https://doi.org/10.3389/fimmu.2020.01191 - DOI - PubMed - PMC
    1. Amemiya T, Shibata K, Itoh Y, Itoh K, Watanabe M, Yamaguchi T (2017) Primordial oscillations in life: direct observation of glycolytic oscillations in individual HeLa cervical cancer cells. Chaos 27:104602 - PubMed - DOI
    1. Amson R, Pece S, Marine JC, Di Fiore PP, Telerman A (2013) TPT1/ TCTP-regulated pathways in phenotypic reprogramming. Trends Cell Biol 23(1):37–46 - PubMed - DOI
    1. Aranda V, Nolan M, Muthuswamy S (2008) Par complex in cancer: a regulator of normal cell polarity joins the dark side. Oncogene 27:6878–6887 - PubMed - PMC - DOI
    1. Archetti M, Pienta KJ (2019) Cooperation among cancer cells: applying game theory to cancer. Nat Rev Cancer 19:110–117 - PubMed - DOI

LinkOut - more resources