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A divergent protein kinase A in the human pathogen Leishmania is associated with developmental morphogenesis

Fischer-Weinberger, R.; Bachmaier, S.; Dandugudumuoa, R.; Phan, I. Q.; Almoznino, M.; Githure, G. B.; Polatoglou, E.; Tsigankove, P.; Nitzan Koren, R.; Myler, P. J.; Boshart, M. J.; Zilberstein, D.

2021-04-26 cell biology
10.1101/2021.04.24.440790 bioRxiv
Show abstract

Parasitic protozoa of the genus Leishmania cycle between the phagolysosome of mammalian macrophages, where they reside as rounded intracellular amastigotes, and the midgut of female sand flies, which they colonize as elongated extracellular promastigotes. Previous studies indicated that protein kinase A (PKA) plays an important role in the initial steps of promastigote development into amastigotes. Here, we describe a novel regulatory subunit of PKA (which we have named PKAR3) that is unique to Leishmania and most (but not all) other Kinetoplastea. PKAR3 is localized to subpellicular microtubules (SPMT) in the cell cortex, where it recruits a specific catalytic subunit (PKAC3). Promastigotes of PKAR3 or PKAC3 null mutants lose their elongated shape and are round but remain flagellated. Truncation of an N-terminal formin homology-like domain of PKAR3 results in its detachment from the SPMT, also leading to rounded promastigotes. Thus, the tethering of PKAC3 kinase activity via PKAR3 at the cell cortex is essential for maintenance of the elongated shape of promastigotes. This role of PKAR3 is reminiscent of PKARI{beta} and PKARII{beta} binding to microtubules of mammalian neurons, which is essential for the elongation of dendrites and axons, respectively. Interestingly, PKAR3 does not bind cAMP but nucleoside analogs with a very high affinity similar to the PKAR1 isoform of Trypanosoma. We propose that these early diverged protists have re-purposed PKA for a novel signaling pathway that spatiotemporally controls microtubule remodeling and cell shape via PKA activity.

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