The traditional approaches to cancer research and therapy have been primarily focused in the aspect of aberrant, uncontrolled, proliferation. Although this is clearly a very important issue, however, the emphasis on this characteristic has led to a relative neglect of an essential aspect of cancer biology: the alteration of normal differentiation processes. The oncogenic alterations that arise in an otherwise healthy cell lead to a whole reprogramming of the normal cellular fate and open a new pathologic developmental program. In this way cancer, reprogramming and cellular plasticity are tightly intertwined, since only some cells posses the necessary plasticity so as to allow the tumoral reprogramming to take place, and only some oncogenes have, in the right cellular context, the required tumoral reprogramming capacity. Research in the field of induced pluripotency is shedding a new light on the molecular mechanisms of tumor initiation and differentiation. In this review we discuss the latest findings in the area of cellular reprogramming and their implications from the point of view of tumor biology.
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http://dx.doi.org/10.1016/j.semcancer.2010.02.002 | DOI Listing |
Pharmaceuticals (Basel)
January 2025
Department of Biomedicine, Texas A&M University, College Station, TX 77843, USA.
Recent developments in single-cell multi-omics technologies have provided the ability to identify diverse cell types and decipher key components of the tumor microenvironment (TME), leading to important advancements toward a much deeper understanding of how tumor microenvironment heterogeneity contributes to cancer progression and therapeutic resistance. These technologies are able to integrate data from molecular genomic, transcriptomic, proteomics, and metabolomics studies of cells at a single-cell resolution scale that give rise to the full cellular and molecular complexity in the TME. Understanding the complex and sometimes reciprocal relationships among cancer cells, CAFs, immune cells, and ECs has led to novel insights into their immense heterogeneity in functions, which can have important consequences on tumor behavior.
View Article and Find Full Text PDFInsects
January 2025
College of Environmental and Life Sciences, Murdoch University, Murdoch, WA 6150, Australia.
Innate immunity is critical for insects to adjust to complicated environments. Studying the insect immune system can aid in identifying novel insecticide targets and provide insights for developing novel pest control strategies. Insects recognize environmental pathogens through pattern recognition receptors, thus activating the innate immune system to eliminate pathogens.
View Article and Find Full Text PDFInt J Mol Sci
January 2025
School of Biology and Biological Engineering, South China University of Technology, University Town, Guangzhou 510006, China.
Prostate cancer is one of the most common malignancies affecting men worldwide and a leading cause of cancer-related mortality, necessitating a deeper understanding of its underlying biochemical pathways. Similar to other cancer types, prostate cancer is also characterised by aberrantly activated metabolic pathways that support tumour development, such as amino acid metabolism, which is involved in modulating key physiological and pathological cellular processes during the progression of this disease. The metabolism of several amino acids, such as glutamine and methionine, crucial for tumorigenesis, is dysregulated and commonly discussed in prostate cancer.
View Article and Find Full Text PDFInt J Mol Sci
January 2025
Ministry of Agriculture and Rural Affairs, Key Laboratory of Aquatic Animal Immune Technology, Key Laboratory of fishery Drug Development, Pearl River Fisheries Research Institute, Chinese Academy of Fishery Sciences, Guangzhou 510380, China.
Glutamine metabolism is essential for infectious spleen and kidney necrosis virus (ISKNV) replication. Glutaminase 1 (GLS1), the key enzyme of the glutamine metabolism, and c-Myc positively regulate ISKNV infection, while c-Myc is closely correlated with GLS1. However, the regulatory mechanism among ISKNV, c-Myc and glutamine metabolism remains unclear.
View Article and Find Full Text PDFInt J Mol Sci
January 2025
Departamento de Biología Molecular y Bioquímica, Facultad de Ciencias, Universidad de Málaga, E-29071 Málaga, Spain.
The importance of redox systems as fundamental elements in biology is now widely recognized across diverse fields, from ecology to cellular biology. Their connection to metabolism is particularly significant, as it plays a critical role in energy regulation and distribution within organisms. Over recent decades, metabolism has emerged as a relevant focus in studies of biological regulation, especially following its recognition as a hallmark of cancer.
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