Search bioRxiv⌕ Search

Biology subjects

Khalilzadeh, M.

Publications and source records attributed to Khalilzadeh, M..

2 recordsLinked to original sources

Arabidopsis Membrane Contact Site protein SYNAPTOTAGMIN A maintains sieve element endomembrane morphology and function

Very little is known about the sieve element (SE) endomembrane system. In terms of surface area, the most important membrane is the SE endoplasmic reticulum, characterized by a unique cisternal structure of anchored flat and smooth stacks. Plasma membrane contact sites (MCSs) play a crucial role in anchoring the endoplasmic reticulum (ER) to the plasma membrane (PM) and in maintaining membrane intergrity. Here, we tested their role of MCSs in the endomembrane system of the sieve elements. Synaptotagmin A (SYTA) is one of the best-studied proteins known to form ER-PM MCSs in plants. We show that SYTA:RFP co-localizes with SUC2::GFP and CALS7::GFP, confirming its presence in Arabidopsis SEs. In syta-1 mutants, SER lost its discrete shape and separated from the SE wall. The export of 14C-compounds from leaves of wild type plants was about 10% higher than in syta-1 mutants. Finally, we explored SYTAs role in phytoplasma infection response. After infection, syta-1 plants displayed 50% less callose deposition and an uneven distribution pattern of the pathogen. In conclusion, our work shows that SYTA is required for maintaining the unique shape of the SE endomembrane system, and for diverse SE functions including callose deposition, carbon translocation and response to pathogens.

plant biology↗

Combating citrus greening disease by simultaneously targeting the pathogen and callose-mediated phloem occlusion

Huanglongbing (HLB), caused by Candidatus Liberibacter asiaticus (CLas), disrupts sugar transport in citrus due to bacterial proliferation and excessive callose deposition that blocks sieve elements. Unblocking phloem may reduce symptoms, but it is unclear whether targeting CLas or suppressing callose deposition is more critical, as both contribute to phloem dysfunction. This study evaluated whether an integrated strategy targeting both CLas and callose-mediated phloem blockage could more effectively restore phloem transport, carbohydrate allocation, and productivity in HLB-affected citrus. Two complementary field experiments assessed the effects of an antibiotic, a callose inhibitor, and their combination on phloem recovery and source-sink dynamics. The first experiment focused on treatment-induced changes in carbon transport between source and sink shortly after delivery via stem infiltration, capturing immediate physiological responses. The second experiment assessed cumulative carbon allocation to determine sustained effects on assimilate transport and fruit development. Callose inhibitor treatment increased sugar transport but this immediate response did not yield lasting benefits. Antibiotic treatment enhanced carbon import into developing fruits, but these effects were not consistently supported by other physiological indicators. In contrast, the combined treatment reduced callose deposition, improved phloem conductivity and carbon allocation during high sink demand, decreased fruit abscission, and increased the total carbon accumulated in the fruits after physiological fruit drop. Collectively, these results demonstrate that impaired source-sink balance in HLB-affected citrus results from the combination of both pathogen load and host callose accumulation, supporting an integrated strategy that combines pathogen suppression with modulation of host phloem function to improve orchard productivity.

plant biology↗