Ras small GTPases act as molecular switches in various cellular signaling pathways, including cell migration, proliferation, and differentiation. Three Rap proteins are present in Dictyostelium; RapA, RapB, and RapC. RapA and RapC have been reported to have opposing functions in the control of cell adhesion and migration. Here, we investigated the role of RapB, a member of the Ras GTPase subfamily in Dictyostelium, focusing on its involvement in cell adhesion, migration, and developmental processes. This study revealed that RapB, similar to RapA, played a crucial role in regulating cell morphology, adhesion, and migration. rapB null cells, which were generated by CRISPR/Cas9 gene editing, displayed altered cell size, reduced cell-substrate adhesion, and increased migration speed during chemotaxis. These phenotypes of rapB null cells were restored by the expression of RapB and RapA, but not RapC. Consistent with these results, RapB, similar to RapA, failed to rescue the phenotypes of rapC null cells, spread morphology, increased cell adhesion, and decreased migration speed during chemotaxis. Multicellular development of rapB null cells remained unaffected. These results suggest that RapB is involved in controlling cell morphology and cell adhesion. Importantly, RapB appears to play an inhibitory role in regulating the migration speed during chemotaxis, possibly by controlling cell-substrate adhesion, resembling the functions of RapA. These findings contribute to the understanding of the functional relationships among Ras subfamily proteins.
Aconitum carmichaeli Debx. (Ranunculaceae) is a potential
source of an important herbal drug named “Fuzi”, which is
derived from the lateral root of the plant. Increased therapeutic
usage resulted in the great demand for artificial cultivation
of A. carmichaeli, however, the obstacles caused by
continuous cropping is a serious problem. Continuous cropping
has shown to affect the soil biological and non-biological
factors. The current study attempted to discover the variations
of microbial communities and soil properties in shortterm
continuous cropping of A. carmichaeli. An experimental
procedure with A. carmichaeli planted two years continuously
was established. The variation of the soil microbial community,
disease incidence, soil properties, and the correlation
between soil microbe and disease incidence were investigated.
The disease incidence increased during the continuous cropping
of A. carmichaeli. The PCoA and LefSe results indicated
that fungal communities in rhizosphere soil were altered during
the short-term continuous croppingand the bacterial community
was disturbed by the cultivation of A. carmichaeli,
however, in the following two years of continuous cropping
period, the soil bacterial community has not changed obviously.
Proportions of some fungal and bacterial genera were
varied significantly (p < 0.05), and some genera of microflora
showed a significant correlation with adisease incidence of
A. carmichaeli. Microorganisms contributing to community
composition discrepancy were also elucidated. Continuous
cropping of A. carmichaeli disturbed the rhizosphere soil microbial
community and altered the soil chemical parameters
and soil pH. These variations in soil may be related to the
occurrence of plant diseases. The current study will not only
provide theoretical and experimental evidence for the A.
carmichaeli continuous cropping obstacles but will also contribute
to A. carmichaeli agricultural production and soil
improvement.
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