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de la Ballina, L. R.

Publications and source records attributed to de la Ballina, L. R..

3 recordsLinked to original sources

ATG16L2 creates a VAIL-dedicated heterodimer with ATG16L1

The ATG8 conjugation machinery supports both canonical autophagy, in which ATG8 proteins are lipidated on forming autophagosomes, and CASM, in which ATG8 proteins are conjugated to stressed single-membrane compartments. How cells allocate this shared machinery between these competing membrane programs remains unclear. Here, we identify ATG16L2 as a specialized regulator of V-ATPase-responsive ATG8 lipidation (atg8ylation). ATG16L2 does not form stable homodimers and is inactive in the absence of ATG16L1, but it becomes functional through heterodimerization with ATG16L1. The ATG16L1-ATG16L2 heterodimer constitutes a VAIL-competent E3-like complex that is excluded from WIPI2-positive autophagic membranes but readily recruited to stressed lysosomes. ATG16L2 also confers VAIL activity onto the otherwise VAIL-deficient ATG16L1 isoform. We propose that ATG16L1 homodimers and ATG16L1-ATG16L2 heterodimers represent alternative assemblies of the ATG8 conjugation machinery: ATG16L1 homodimers are dedicated to WIPI2-positive autophagic membranes, whereas ATG16L1-ATG16L2 heterodimers containing either ATG16L1 isoform form a VAIL-selective assembly.

molecular biology↗

Structural basis for the ATP-dependence of omegasome biogenesis by DFCP1

Autophagosome formation begins at phosphatidylinositol 3-phosphate-enriched endoplasmic reticulum (ER) subdomains termed omegasomes. DFCP1/ZFYVE1 is recruited to omegasomes through its FYVE domains and has recently been shown to function as an ATPase involved in omegasome constriction and autophagosome biogenesis. However, the structural basis of DFCP1 ATPase activity and how nucleotide-dependent conformational states regulate omegasome dynamics remain unknown. Here, we determined the crystal structures of the DFCP1 ATPase domain in complex with either ADP or the non-hydrolyzable ATP analogue, AppNHp at near atomic resolution. We employed structure-guided mutagenesis to define residues required for DFCP1 function in cells. The structures reveal that the active site contains a trans-acting Arg271 finger coordinating the {psi}-phosphate and trans-acting His323 that stacks on the ATP adenine ring. ATP hydrolysis results in a conformational switch in the vicinity of Arg271, while contacts with His323 persist in the presence of ADP. Biochemical analyses of DFCP1 and its mutants show that DFCP1 forms ATP-dependent microdomains on membranes. Disruption of His323 and Arg271 uncouples nucleotide binding from ATP hydrolysis and alters the oligomeric state of the protein. Live-cell imaging of DFCP1 knockout cells reconstituted with wild-type or mutant DFCP1 further demonstrates that these biochemical defects translate into distinct omegasome phenotypes. Together, our data provides a structural-function framework for DFCP1 ATPase activity and reveals how distinct catalytic elements control omegasome dynamics in vivo. We propose that nucleotide-dependent assembly and hydrolysis-driven conformational changes enable DFCP1 to regulate omegasome formation and its progression toward autophagosome closure. Significance StatementDFCP1 organizes the ER subdomains known as omegasomes, which are sites of autophagosome biogenesis. DFCP1 is an ATPase whose catalytic activity is required for function, but the precise role of its ATPase activity is unknown. Crystal structures of the DFCP1 ATPase domain in the presence of a non-hydrolyzable ATP analogue and ADP reveal an Arg finger that operates in trans, such that dimerization is required for ATP hydrolysis, and ATP hydrolysis destabilizes dimers. Dimerization is also promoted by an adenine base-stacking interaction in trans with H323. These residues are important for DFCP1 clustering on membranes and omegasome constriction, clarifying that the role of ATP is to promote the dimerization of the ATPase domain and thereby control the organization of DFCP1 on membranes.

biochemistry↗

Presynaptic Actin Nanostructures: A Reproducibility Case Study

In an effort to assess the reproducibility of bioimage analyses in current publications, we took part in a Global BioImage Analysts Society (GloBIAS) initiative to try and reproduce results from published articles. We attempted to reproduce core findings from the work of Bingham et al., which investigates the actin organisation in presynaptic structures by using diffraction-limited and super-resolution microscopy. While the original paper unveiled clear biological insight, it lacked sufficient detail in the bioimage analysis methodological approach, limiting the depth of reproducibility we could achieve. Through frequent contacts with the corresponding author, we managed to replicate qualitative aspects of the analysis of actin nanostructures in bead-induced presynapses. We performed image reconstruction from super-resolution microscopy data, automatic image registration and visual inspection, followed by manual annotation of structures of interest in [~]35 images. Our experience with this exercise highlights the importance of transparent data sharing and accessibility, as well as the need to adhere to bioimage analysis standards that ensure the reproducibility of nowadays complex biological image analysis studies. It also shows how crucial interdisciplinary collaboration is, since many biology labs are simply unaware of these standards, which are often easy to implement and would likely be widely adopted if their value was better understood or known.

neuroscience↗