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The high values of -log p (values greater than 2.0 indicate statistical significance at α < 0.01) indicate that clusters are significantly enriched for biological function and can be considered to be functional modules.
With nanofraction arising from melting and evaporation followed by vapor condensation of average size in the range of 10 150 nm, corresponding structural and phase composition of the solid phase has signs of biological function and can be used in biotechnology, particularly in the technologies of growing vegetable products.
We hypothesize that, given these similar co-expression patterns across genes and ROIs, each GS BC pair forms an interesting high-level imaging genetic entity that may be related to certain biological function and can serve as a valuable candidate for two-dimensional IGEA.
These bioinformatics data show for the first time that both FXN-2 and FXN-3 may have a biological function and can be considered a starting point for future studies aimed at confirming the function of both FXN-2 and FXN-3 isoforms by using the purified protein.
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The thermal motion and intrinsic disorder of protein cofactors are highly correlated with their biological functions and can be at least in part measured by atomic temperature factor or B-factor.
PEMF has various biological functions and can affect bone metabolism.
Recent discoveries indicate that syndecan-1 core proteins also have biological functions and can modulate cell behavior independent of HS.
For DEGs, GO enrichment analysis can determine the key biological functions and KEGG can determine the key biochemical metabolic pathways and signal transduction pathways.
Note that we here only considered known PPIs that contact physically or chemically in selecting DEPs rather than all possible pairs among all detected genes in microarray; both because expressions noisy and because physically or chemically contacting pairs can share biological function and thus their biological meaning can be easily interpreted.
The expanding molecular toolkit available to the zebrafish community will continue to enhance our basic understanding of vertebrate organ, tissue, cell and molecular biological functions, and, increasingly, can be applied with ever greater precision to studies directly geared toward understanding and treating human disease.
Four modules were presented below to illustrate the correspondence of these modules with defined biological functions and methods that can be used to explore functional modules from these gene coexpression networks.
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