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Biology subjects

Zhang, R.-K.

Publications and source records attributed to Zhang, R.-K..

3 recordsLinked to original sources

Unraveling the Intricate Cargo-BBSome Coupling Mechanism at the Ciliary Tip

Certain ciliary transmembrane and membrane-tethered signaling proteins migrate from the ciliary tip to base via retrograde intraflagellar transport (IFT), essential for maintaining their ciliary dynamics to enable cells to sense and transduce extracellular stimuli inside the cell. During this process, the BBSome functions as an adaptor between retrograde IFT trains and these signaling protein cargoes. The Arf-like 13 (ARL13) small GTPase resembles ARL6/BBS3 in facilitating these signaling cargoes to couple with the BBSome at the ciliary tip prior to loading onto retrograde IFT trains for transporting towards the ciliary base, while the molecular basis for how this intricate coupling event happens remains elusive. Here, we report that Chlamydomonas ARL13 only in a GTP-bound form (ARL13GTP) anchors to the membrane for diffusing into cilia. Upon entering cilia, ARL13 undergoes GTPase cycle for shuttling between the ciliary membrane (ARL13GTP) and matrix (ARL13GDP). To achieve this goal, the ciliary membrane-anchored BBS3GTP binds and activates the ciliary matrix-residing ARL13GDP as an ARL13 guanine nucleotide exchange factor. At the ciliary tip, ARL13GTP binds and recruits the ciliary matrix-residing and post-remodeled BBSome as an ARL13 effector to anchor to the ciliary membrane. This makes the BBSome spatiotemporally become available for the ciliary membrane-tethered phospholipase D (PLD) to couple with. Afterward, ARL13GTP hydrolyzes GTP for releasing the PLD-laden BBSome to load onto retrograde IFT trains. According to this model, hedgehog signaling defects associated with ARL13b and BBS3 mutations in humans could be satisfactorily explained, providing us a mechanistic understanding behind BBSome-cargo coupling required for proper ciliary signaling. Significance statementCertain signaling proteins export in a BBSome-dependent manner from cilia via retrograde IFT. As IFT cargoes, their coupling with the BBSome is mediated by ARL13 and BBS3. Here, we report that ARL13 in a GTP-bound state binds the membrane for diffusing into cilia followed by running GTPase cycle with BBS3 acting as an ARL13-specific guanine nucleotide exchange factor. ARL13GTP recruits the IFT-shed BBSome as its effector to anchor to the membrane of the ciliary tip, making it spatiotemporally available for the ciliary membrane-tethered PLD to bind. Afterward, ARL13 GTP hydrolysis releases the PLD-laden BBSome for retrograde IFT train loading. ARL13 and BBS3 facilitate the cargo-BBSome coupling in such a way providing a regulatory mechanism for signaling protein export from cilia.

cell biology↗

RABL2 Regulates Ciliation via Controlling IFT-B1 Basal Body Recruitment and ARL3-mediated BBSome Ciliary Retrieval

Highly conserved intraflagellar transport (IFT) trains and certain small GTPases coordinate to direct ciliation and to maintain the ciliary dynamics of signaling molecules via the IFT cargo adaptor BBSome. Unlike murine Rab-like 2 (RABL2) GTPase that enters cilia to drive outward transition zone (TZ) passage of the BBSome, human orthologue fails to enter cilia but resides at the ciliary base, indispensable for ciliation. However, mechanisms underlying how RABL2 regulates ciliation and BBSome barrier passage remain elusive. Here, we show that Chlamydomonas RABL2 regulates basal body targeting of the IFT-B1 subcomplex component of IFT trains as a RABL2-specific effector, mediating ciliation via controlling IFT-B1 basal body amount available for assembling anterograde IFT trains. RABL2GTP binds IFT-B1 to perform IFT; sheds from retrograde IFT trains at the proximal ciliary region right above the TZ; and converts to RABL2GDP rapidly. Next, RABL2GDP activates the ciliary membrane anchored Arf-like 3 (ARL3) GTPase (ARL3GDP) as a ARL3-specific guanine nucleotide exchange factor. Upon detaching from the ciliary membrane, the active ARL3GTP recruits its BBSome effector, autonomous of retrograde IFT train association, to move cross the TZ for ciliary retrieval. This ensures proper BBSome ciliary turnover for maintaining phototactic response of Chlamydomonas cells. For finishing RABL2 ciliary cycle, RABL2GDP passes the TZ for ciliary retrieval by loading onto the ARL3GTP/BBSome as a BBSome cargo. Our data thus propose that RABL2 mediates ciliation and BBSome ciliary retrieval simultaneously but via distinct molecular pathways. Significance statementIntraflagellar transport (IFT) and its cargo adaptor BBSome are indispensable for ciliation and ciliary singling. Rab-like 2 (RABL2) GTPase mediates ciliation and outward transition zone (TZ) passage of BBSomes with mechanisms yet to be determined. Here, we report that RABL2 decides ciliation by controlling the basal body amount of its effector IFT-B1 available for the assembly of anterograde IFT trains. RABL2GTP cycles through cilia as an IFT-B1 cargo; sheds from IFT at the ciliary base; and undergoes nucleotide exchange for activating ARL3 as an ARL3-specfic guanine nucleotide exchange factor. ARLGTP recruits IFT-shed BBSomes to pass the TZ for ciliary retrieval. RABL2GDP exists cilia via ARL3GTP/BBSome as a BBSome cargo. Therefore, RABL2 functions both outside and inside cilia for initiating IFT and BBSome ciliary retrieval, respectively.

cell biology↗

ARL3 Mediates BBSome Ciliary Turnover by Promoting Its Outward Diffusion through the Transition Zone

Ciliary receptors and their certain downstream signaling components undergo intraflagellar transport (IFT) as BBSome cargoes to maintain their ciliary dynamics for sensing and transducing extracellular stimuli inside the cell. Cargo laden BBSomes shed from retrograde IFT at the proximal ciliary region above the transition zone (TZ) followed by diffusing through the TZ for ciliary retrieval, while how the BBSome barrier passage is controlled remains elusive. Here, we show that the BBSome is a major effector of the Arf-like 3 (ARL3) GTPase in Chlamydomonas. Under physiological condition, ARL3GDP binds the membrane for diffusing into and residing in cilia. Following a nucleotide conversion, ARL3GTP dissociates with the ciliary membrane and binds and recruits the IFT-detached and cargo (phospholipase D, PLD)-laden BBSome at the proximal ciliary region to diffuse through the TZ and out of cilia. ARL3 deficiency impairs ciliary signaling, e.g. phototaxis of Chlamydomonas cells, by disrupting BBSome ciliary retrieval, providing a mechanistic understanding behind BBSome ciliary turnover required for ciliary signaling.

cell biology↗