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Increasing evidence demonstrates that miRNAs play an important function in many biological and metabolic processes, including tissue identity, developmental timing, and response to environmental stress [ 8, 9].
Major functions of MYB in Arabidopsis include primary and secondary metabolism, cell fate and identity, developmental processes and responses to biotic and abiotic stresses [ 62].
R2R3-MYB proteins that have been characterized mainly participate in plant-specific processes, such as primary and secondary metabolism, cell identity, developmental regulation and stress responses [ 4, 24].
The known functions were well-summarized into four plant-specific processes, including primary and secondary metabolism, cell fate and identity, developmental processes and responses to biotic and abiotic stresses [ 10].
MYB proteins in plants are involved in a variety of plant-specific processes, including primary and secondary metabolism, cell fate and identity, developmental processes, and responses to various stresses [ 25- 27, 31- 40].
Numerous R2R3-MYB proteins are involved in the control of plant-specific processes including: primary and secondary metabolism, cell fate and identity, developmental processes, and responses to biotic and abiotic stresses [ 79, 80].
Similar(51)
Understanding principle designs of cellular identity and developmental progression is crucial for providing answers.
To confirm ground state identity and developmental potential, we examined ability to colonize the mouse embryo after morula aggregation.
Asexual reproduction of polyps requires mitotic cell proliferation as well as regulation of cell identity through developmental signaling pathways.
Most significantly, the embryonic identity and developmental potential of Esrrb null cells was confirmed by integration into the inner cell mass after aggregation with morulae and widespread contribution to the midgestation embryo after blastocyst injection.
These analyses suggest that fluctuations in the levels of the miRNAs in different samples, without high organ specificity, may have a crucial functional role, in defining organ identity and developmental programming.
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