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Jhala, K.

Publications and source records attributed to Jhala, K..

2 recordsLinked to original sources

Concomitant post-translational repression of Arabidopsis PIP1 aquaporins upon the loss of major PIP2 isoforms

Aquaporins at the plant plasmalemma are divided into two highly conserved subclasses, PLASMA MEMBRANE INTINSIC PROTEINs 1 (PIP1) and PIP2. Arabidopsis thaliana encodes five PIP1 and eight PIP2 isoforms. Individual loss-of-function mutants had been employed for functional analyses. Here, we observe that the pip2;1 pip2;2 pip2;4 pip2;6 pip2;7 quintuple mutant defective of major PIP2 isoforms concomitantly leads to a strongly reduced PIP1 protein level. Lower order mutants pip2;1 pip2;2 and pip2;1 pip2;2 pip2;7 still harbor only 60% and 20% residual PIP1, respectively. This repression is established post-translationally, since neither PIP1s steady-state transcripts nor polysome-associated PIP1 mRNAs are suppressed by pip2;1 pip2;2 pip2;7. Thus, the two major pathways operating in eukaryotes for removal of aberrant proteins, ubiquitin proteasome system (UPS)-dependent ER-associated degradation (ERAD) and autophagy/vacuole-linked degradation, were assessed. Introgression of atg7 blocking autophagy-mediated degradation does not affect the PIP1 protein level of pip2;1 pip2;2 pip2;7. In contrast, introgression of ERAD loss-of-function mutations hrd1A hrd1B and dln1 into pip2;1 pip2;2 pip2;7 partially stabilizes its PIP1 protein level. PIP1 accumulates intracellularly upon pharmacological inhibition of proteasomal degradation by MG132. Nevertheless, the lack of a full PIP1 recovery by these means suggests the flexible operation of parallel ERAD components or unknown pathways. In conclusion, the essential dependence of PIP1 expression on PIP2 isoforms intrinsically interconnects the two PIP subclades at the protein level and will thereby affect their mutual functions. Significance statementPlasma membrane intrinsic proteins constituting the most homogenous plant aquaporin family are nonetheless split into two highly conserved subfamilies, PIP1 and PIP2. The loss of major Arabidopsis PIP2 isoforms does not lead to compensation by PIP1 members, but rather to PIP1s concomitant, post-translational repression. This dependence of PIP1 isoforms inevitably ties the two PIP subfamilies and their function.

plant biology↗

Nanoscale regulation of ROS signaling at the plasma membrane tunes the plant response to osmotic stress

The spatiotemporal organization of proteins and lipids within membranes is crucial for ensuring proper cellular signaling. While the segregation of proteins and lipids into membrane nanodomains is well established, it remains unclear whether nanodomains can generate gradients of small diffusible molecules. In plants, reactive oxygen species (ROS), especially hydrogen peroxide (H2O2), act as a key signaling molecules in response to environmental stimuli such as osmotic stress. However, how extracellular H2O2 affects intracellular signaling has remained unknown. Here, we show that osmotic stimulation induces the formation of localized, H2O2-rich nano-environments at the cytoplasmic face of the plasma membrane (PM) in Arabidopsis root cells. Using a PM-tethered H2O2 biosensor, we found that these oxidized nanodomains arise from the clustering of RESPIRATORY BURST OXIDASE HOMOLOGs (RBOHs) and RHO OF PLANTS 6 (ROP6), in coordination with aquaporin-mediated H2O2 transport via the PLASMA MEMBRANE INTRINSIC PROTEIN2;7 (PIP2;7). These local redox hotspots at the PM create a feedforward loop in which H2O2 enhances ROP6 nanoclustering thereby amplifying ROS signaling. Disruption of H2O2 production or transport dampens both ROP6 clustering and anisotropic cell expansion, indicating a crucial role for spatially-confined redox signaling in regulating plant growth under osmotic stress. Our findings propose a model in which ROP6/RBOHD-F/PIP2;7 nanodomains function as discrete redox signaling units, redefining ROS signaling at the PM as a structured, signal-specific, and compartmentalized process.

cell biology↗