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Haffner-Krausz, R.

Publications and source records attributed to Haffner-Krausz, R..

2 recordsLinked to original sources

Egg MVBs elicit an antimicrobial pathway to degrade paternal mitochondria after fertilization

Mitochondria are maternally inherited, but the mechanisms underlying paternal mitochondrial elimination (PME) after fertilization are far less clear. Using Drosophila, we show that special egg-derived multivesicular bodies (MVBs) promote PME by activating LC3-associated phagocytosis (LAP), a cellular defense pathway commonly employed against invading microbes. Upon fertilization, the egg MVBs engage and densely coat the sperm flagellum, forming extended flagellum vesicular sheaths (FVSs), within which the paternal mitochondria degrade. Inactivation of multiple LAP pathway components, such as Rubicon, a LAP-specific class III PI(3)K complex protein, significantly attenuates PME. Furthermore, recruitment of Atg8/LC3 to the FVS requires both Rubicon and the Atg8/LC3 conjugation machinery. Other LAP pathway events, such as production of the phospholipid PtdIns(3)P and reactive oxygen species (ROS), also unfold during PME. Finally, we provide evidence that a similar pathway might also mediate PME in mammals, highlighting the notion that eggs may regard paternal mitochondria as potentially dangerous trespassers.

developmental biology↗

BCKDK regulates the TCA cycle through PDC to ensure embryonic development in the absence of PDK family

Pyruvate dehydrogenase kinases (PDK1-4) inhibit the TCA cycle by phosphorylating pyruvate dehydrogenase complex (PDC). Here, we show that the PDK family is dispensable for the survival of murine embryonic development and that BCKDK serves as a compensatory mechanism by inactivating PDC. First, we knocked out all four Pdk genes one by one. Surprisingly, Pdk total KO embryos developed and were born in expected ratios, but died by postnatal day 4 due to hypoglycemia or ketoacidosis. Finding that PDC was phosphorylated in these embryos suggested that another kinase compensates for the PDK family. Bioinformatic analysis implicated brunch chain ketoacid dehydrogenase kinase (Bckdk), a key regulator of branched chain amino acids (BCAA) catabolism. Indeed, knockout of Bckdk and the Pdk family led to loss of PDC phosphorylation, increment in PDC activity, elevation of Pyruvate flux into the TCA and early embryonic lethality. These findings reveal a new regulatory crosstalk hardwiring BCAA and glucose catabolic pathways, which feed the TCA cycle.

molecular biology↗