Plasma membrane H+-ATPases sustain pollen tube growth and fertilization
Pollen tubes are highly polarized tip-growing cells that depend on cytosolic pH gradients for signaling and growth. Autoinhibited plasma membrane proton (H + ) ATPases (AHAs) have been proposed to energize pollen tube growth and underlie cell polarity, however, mechanistic evidence for this is lacki...
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Veröffentlicht in: | Nature communications 2020-05, Vol.11 (1), p.2395-2395, Article 2395 |
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Sprache: | eng |
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Zusammenfassung: | Pollen tubes are highly polarized tip-growing cells that depend on cytosolic pH gradients for signaling and growth. Autoinhibited plasma membrane proton (H
+
) ATPases (AHAs) have been proposed to energize pollen tube growth and underlie cell polarity, however, mechanistic evidence for this is lacking. Here we report that the combined loss of
AHA6, AHA8
, and
AHA9
in
Arabidopsis thaliana
delays pollen germination and causes pollen tube growth defects, leading to drastically reduced fertility. Pollen tubes of
aha
mutants had reduced extracellular proton (H
+
) and anion fluxes, reduced cytosolic pH, reduced tip-to-shank proton gradients, and defects in actin organization. Furthermore, mutant pollen tubes had less negative membrane potentials, substantiating a mechanistic role for AHAs in pollen tube growth through plasma membrane hyperpolarization. Our findings define AHAs as energy transducers that sustain the ionic circuit defining the spatial and temporal profiles of cytosolic pH, thereby controlling downstream pH-dependent mechanisms essential for pollen tube elongation, and thus plant fertility.
Cytosolic ion gradients in growing pollen tubes are thought to be required for polar growth. Here the authors show that the
Arabidopsis
plasma membrane H
+
ATPases, AHA6, AHA8, and AHA9, maintain tip-to-shank proton gradients, oscillations in cytosolic pH and actin organization to enable pollen tube elongation. |
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ISSN: | 2041-1723 2041-1723 |
DOI: | 10.1038/s41467-020-16253-1 |