bioRxiv Science⌕ Search

Biology subjects

Nambo, M.

Publications and source records attributed to Nambo, M..

3 recordsLinked to original sources

Inducible degradation of endogenous proteins by AlissAID system and development of a photoactivatable inducer.

Protein analysis strategies involving targeted protein degradation are powerful approaches to determine gene functions. Auxin-inducible degron (AID) is among the most widely used methods for target protein knockdown. This system enables the rapid depletion of AID-tagged target proteins in an auxin-dependent manner. Various improved AID methods have been developed to date; however, the requirement to tag the target protein remains a common challenge. Here, we demonstrated the efficiency of the affinity-linker-based super-sensitive AID system for condition-knockdown of target proteins in cultured animal cells and mouse embryos. This system combines the improved AID method with small-molecule antibodies, enabling the control of GFP and mCherry fusion proteins. Additionally, this system can be used to degrade endogenous targets, such as Ras proteins. We also developed a novel inducer, caged 5-adamantyl-IAA, that precisely controlled targeted protein degradation under light irradiation. This advanced technique aids in the degradation of endogenous proteins of interest and can be used to develop new technologies for localized protein degradation.

cell biology↗

Development of bright fluorescent auxin

Polar transport of the phytohormone auxin plays a crucial role in plant growth and response to environmental stimuli. Small-molecule tools that visualize auxin distribution in intact plants enable us to understand how plants dynamically regulate auxin transport to modulate growth. In this study, we developed a new fluorescent auxin probe, BODIPY-IAA2, which effectively visualizes auxin distribution in various plant tissues. We designed this probe to be transported by auxin transporters while lacking the ability to elicit auxin signaling. Using BODIPY as the fluorophore provides bright and stable fluorescence signals, making it suitable for live-imaging under standard fluorescent microscopy. We tested the probe with auxin reporter lines in Arabidopsis and performed yeast two-hybrid assays. The results showed that BODIPY-IAA2 did not activate auxin signaling through the auxin receptor TIR1. However, BODIPY-IAA2 did mildly compete with both exogenous and endogenous auxins for transport, indicating that the probe is transported by auxin transporters in vivo. The probe not only enables visualization of its tissue distribution but also allows sub-cellular staining, including the endoplasmic reticulum and tip regions in elongating cells in moss. We also observed unusual staining patterns in the main root of non-model parasitic plants where genetic transformation is not feasible. Our new fluorescent auxin probe demonstrates significant potential for detailed studies on auxin transport and distribution across diverse plant species.

plant biology↗

Stereoinversion via alcohol dehydrogenases enables complete catabolism of β-1-type lignin-derived aromatic isomers

Sphingobium sp. SYK-6 is an efficient aromatic catabolic bacterium that can consume all four stereoisomers of 1,2-diguaiacylpropane-1,3-diol (DGPD), which is a ring-opened {beta}-1-type dimer. Recently, LdpA-mediated catabolism of erythro-DGPD was reported in SYK-6, but the catabolic pathway for threo-DGPD was heretofore unknown. Here we elucidated the catabolism of threo-DGPD, which proceeds through conversion to erythro-DGPD. When threo-DGPD was incubated with SYK-6, the C alcohol groups of threo-DGPD (DGPD I and II) were initially oxidized to produce the C carbonyl form (DGPD-keto I and II). This initial oxidation step is catalyzed by C-dehydrogenases, which belong to the short-chain dehydrogenase/reductase (SDR) family and are involved in the catabolism of {beta}-O-4-type dimers. Analysis of seven candidate genes revealed that NAD+-dependent LigD and LigL are mainly involved in the conversion of DGPD I and II, respectively. Next, we found that DGPD-keto I and II were reduced to erythro-DGPD (DGPD III and IV) in the presence of NADPH. Genes involved in this reduction were sought from C-dehydrogenase and ldpA-neighboring SDR genes. The gene products of SLG_12690 (ldpC) and SLG_12640 (ldpB) catalyzed the NADPH-dependent conversion of DGPD-keto I to DGPD III and DGPD-keto II to DGPD IV, respectively. Mutational analysis further indicated that ldpC and ldpB are predominantly involved in the reduction of DGPD-keto. Together, these results demonstrate that SYK-6 harbors a comprehensive catabolic enzyme system to utilize all four {beta}-1-type stereoisomers through successive oxidation and reduction reactions of the C alcohol group of threo-DGPD with a net stereoinversion using multiple dehydrogenases. IMPORTANCEIn many catalytic depolymerization processes of lignin polymers, aryl-ether bonds are selectively cleaved, leaving carbon-carbon bonds between aromatic units intact, including dimers and oligomers with {beta}-1 linkages. Therefore, elucidating the catabolic system of {beta}-1-type lignin-derived compounds will aid in the establishment of biological funneling of heterologous lignin-derived aromatic compounds to value-added products. In this work, we found that threo-DGPD was converted by successive stereoselective oxidation and reduction at the C-position by multiple alcohol dehydrogenases to erythro-DGPD, which is further catabolized. This system is very similar to that developed to obtain enantiopure alcohols from racemic alcohols by artificially combining two enantiocomplementary alcohol dehydrogenases. The results presented here demonstrate that SYK-6 has evolved to catabolize all four stereoisomers of DGPD by incorporating this stereoinversion system into its native {beta}-1-type dimer catabolic system.

microbiology↗