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Published on: January 20, 2023
BAD: undertaker by night, candyman by day
1Department of Pathology, Harvard Medical School, Boston, MA 02115, USA. nika_danial@dfci.harvard.edu
Abstract:
The BH3-only pro-apoptotic proteins are upstream sensors of cellular damage that selectively respond to specific, proximal death and survival signals. Genetic models and biochemical studies indicate that these molecules are latent killers until activated through transcriptional or post-translational mechanisms in a tissue-restricted and signal-specific manner. The large number of BH3-only proteins, their unique subcellular localization, protein-interaction network and diverse modes of activation suggest specialization of their damage-sensing function, ensuring that the core apoptotic machinery is poised to receive input from a wide range of cellular stress signals. The apoptotic response initiated by the activation of BH3-only proteins ultimately culminates in allosteric activation of pro-apoptotic BAX and BAK, the gateway proteins to the mitochondrial pathway of apoptosis. From activation of BH3-only proteins to oligomerization of BAX and BAK and mitochondrial outer membrane permeabilization, an intricate network of interactions between the pro- and anti-apoptotic members of the BCL-2 family orchestrates the decision to undergo apoptosis. Beyond regulation of apoptosis, multiple BCL-2 proteins have recently emerged as active components of select homeostatic pathways carrying other cellular functions. This review focuses on BAD, which was the first BH3-only protein linked to proximal survival signals through phosphorylation by survival kinases. In addition to findings that delineated the physiological role of BAD in apoptosis and its dynamic regulation by phosphorylation, studies pointing to new roles for this protein in other physiological pathways, such as glucose metabolism, are highlighted. By executing its 'day' and 'night' jobs in metabolism and apoptosis, respectively, BAD helps coordinate mitochondrial fuel metabolism and the apoptotic machinery.
Insights
BH3-only proteins sense cellular damage and activate apoptosis. The protein BAD plays dual roles in apoptosis and glucose metabolism, coordinating cell death and energy pathways.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- BH3-only proteins are key sensors of cellular damage, initiating apoptosis.
- These proteins are activated by specific signals and regulate the mitochondrial apoptosis pathway.
- The BCL-2 protein family orchestrates the decision to undergo apoptosis through complex interactions.
Purpose of the Study:
- To review the role of BH3-only proteins, focusing on BAD.
- To highlight BAD's function in apoptosis and its regulation by phosphorylation.
- To discuss emerging roles of BAD in other physiological pathways, including glucose metabolism.
Main Methods:
- Genetic models and biochemical studies were used to understand BH3-only protein activation.
- The review synthesizes existing research on BAD's physiological roles.
- Focus on phosphorylation-dependent regulation and metabolic functions.
Main Results:
- BH3-only proteins are specialized damage sensors with diverse activation mechanisms.
- BAD is the first BH3-only protein identified as linking survival signals via phosphorylation.
- BAD exhibits dual functions in both apoptosis and glucose metabolism.
Conclusions:
- BAD coordinates mitochondrial fuel metabolism and the apoptotic machinery.
- The specialization of BH3-only proteins ensures a robust apoptotic response to various cellular stresses.
- Understanding BAD's multifaceted roles offers insights into cellular homeostasis and disease.
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