bioRxiv Science⌕ Search

Biology subjects

Braune, S.

Publications and source records attributed to Braune, S..

4 recordsLinked to original sources

Nanoscale imaging resolves canonical topology and intracellular dynamics of SUN5/SPAG4L during mammalian spermiogenesis

SUN5 is a testis-specific SUN domain protein essential for connecting the sperm tail to the nucleus. However, until now, its precise localization, intracellular dynamics, and membrane topology during spermiogenesis have remained controversial. To address these discrepancies, we applied ultrastructure expansion microscopy (U-ExM) to systematically track SUN5 redistribution throughout spermiogenesis. This approach enabled a detailed reconstruction of SUN5 localization across developmental stages and revealed previously undescribed enrichment at the perinuclear ring (PNR) and the microtubule manchette, suggesting secondary functions at the PNR or a potential role in intra-manchette transport (IMT). Complementary immunogold labelling using the Tokuyasu method, together with biochemical assays, demonstrated that SUN5 adopts a membrane localization and topology consistent with that of classical SUN domain proteins. Quantitative measurements of the nuclear envelope architecture at the head-to-tail coupling apparatus (HTCA) further enabled us to present a refined structural model of SUN5 positioning at the head-tail junction. Overall, our findings resolve previous discrepancies in the field and provide a coherent framework for understanding SUN5 organization and its role in mammalian spermiogenesis. Summary StatementIn the presented study, we analyzed the dynamic redistribution of SUN5 during mammalian spermiogenesis and resolved its topology in developing spermatids to gain insights concerning the proteins molecular function in head-tail coupling.

cell biology↗

The trypanosome mRNA decapping enzyme ALPH1 prefers caps without m7G methylation and produces diphosphate-RNA

5'ends of eukaryotic mRNAs are protected by the m7G cap, connected to the mRNA via a three-phosphate-bridge. In mRNA decay, the pyrophosphate bond between the and {beta} phosphate is cleaved by the nudix hydrolase DCP2. Uniquely among eukaryotes, Kinetoplastida lack DCP2 and instead employ the ApaH-like phosphatase ALPH1 for mRNA decapping. ALPH1 consists of an unstructured N-terminus, a catalytic domain and a structured C-terminus that mediates ALPH1 dimerisation. Here, we have analysed Trypanosoma brucei ALPH1 in greater detail. We find that the enzyme has broad substrate specificity and accepts different cap types and even cap analogues. Strikingly, cap-analogues and RNAs without the m7G-methyl group are turned over significantly faster than m7G methylated substrates. Moreover, all methylated and non-methylated cap analogues tested, with at least one additional nucleotide 3' to the NpppN moiety are cleaved at the {beta}-{gamma} pyrophosphate bond, producing the equivalent to a 5 diphosphate-RNA. While the presence of the ALPH1 C-terminal domain is essential for cell viability and increases enzyme activity in vitro, substrate preferences are determined solely by the catalytic domain. Altogether, these ALPH1 enzymatic properties exhibit intriguing differences to the canonical eukaryotic decapping enzyme DCP2, which we critically discuss and which potentially have biotechnological applications.

molecular biology↗

An updated map of the trypanosome nuclear pore and its associated proteins

Nuclear export of mRNAs requires loading the mRNP to the transporter Mex67/Mtr2 in the nucleoplasm, controlled access to the pore by the basket-localized TREX2 complex and mRNA release at the cytoplasmic site by the DEAD-box RNA helicase Dbp5. Asymmetric localisation of nucleoporins (NUPs) and transport components as well as the ATP dependency of Dbp5 ensure unidirectionality of transport. Trypanosomes possess homologues of the mRNA transporter Mex67/Mtr2, but not of TREX2 or Dbp5. Instead, nuclear export is likely fuelled by the GTP/GDP gradient created by the Ran GTPase. However, it remains unclear, how directionality is achieved since the current model of the trypanosomatid pore is mostly symmetric. We have revisited the architecture of the trypanosome nuclear pore complex using a novel combination of expansion microscopy, proximity labelling and streptavidin imaging. We could confidently assign the NUP76 complex, a known Mex67 interaction platform, to the cytoplasmic site of the pore. The resulting availability of reference proteins for basket, inner ring and cytoplasmic site allowed mapping of all 75 trypanosome proteins with known nuclear pore localisation to a sub-region of the pore based on mass spectrometry data from proximity labelling. This approach defined many further asymmetrically localised nuclear pore components. At the nuclear site, we identified several trypanosome-unique proteins, for instance the FG-NUPs NUP64/NUP98, but also proteins with structural homology to TREX-2 components. We mapped the components of the Ran-based nuclear export system and confirm the absence of a Dbp5 homologue. Lastly, we demonstrate, by deploying an auxin degron system, that NUP76 holds an essential role in mRNA export consistent with a functional orthology to NUP82/88. Altogether, the combination of proximity labelling with expansion microscopy revealed an asymmetric architecture of the trypanosome nuclear pore supporting inherent roles fort directed transport. Our approach delivered novel nuclear pore associated components inclusive positional information, which can now be interrogated for functional roles to explore trypanosome specific adaptions of the nuclear basket, export control and mRNP remodelling.

cell biology↗

Beyond BioID: Streptavidin outcompetes antibody fluorescence signals in protein localization and readily visualises targets evading immunofluorescence detection.

Immunofluorescence is a common method to localise proteins within their cellular context via fluorophore labelled antibodies and for some applications without alternative. However, some protein targets evade detection due to low protein abundance or accessibility issues. In addition, some imaging methods require a massive reduction in antigen density thus impeding detection of even medium-abundant proteins. Here, we show that the fusion of the target protein to TurboID, a biotin ligase labelling lysine residues in close proximity, and subsequent detection of biotinylation by fluorescent streptavidin offers an "all in one" solution to the above-mentioned restrictions. For a wide range of target proteins tested, the streptavidin signal was significantly stronger than an antibody signal, markedly improving the imaging sensitivity in expansion microscopy and correlative light and electron microscopy, with no loss in resolution. Importantly, proteins within phase-separated regions, such as the central channel of the nuclear pores, the nucleolus or RNA granules, were readily detected with streptavidin, while most antibodies fail to label proteins in these environments. When TurboID is used in tandem with an HA epitope tag, co-probing with streptavidin and anti-HA can be used to map antibody- accessibility to certain cellular regions. As a proof of principle, we mapped antibody access to all trypanosome nuclear pore proteins (NUPs) and found restricted antibody labelling of all FG NUPs of the central channel that are known to be phase-separated, while most non-FG Nups could be labelled. Lastly, we show that streptavidin imaging can resolve dynamic, temporally and spatially distinct sub-complexes and, in specific cases, reveal a history of dynamic protein interaction. In conclusion, streptavidin imaging has major advantages for the detection of lowly abundant or inaccessible proteins and in addition, can provide information on protein interactions and biophysical environment.

cell biology↗