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Rizzetto, N.

Publications and source records attributed to Rizzetto, N..

2 recordsLinked to original sources

Structural Basis of Substrate Selectivity and Catalysis in the Mycobacterial Long-Chain Acyl-CoA Carboxylase

Long-chain acyl-CoA carboxylase (LCC) is an essential enzyme complex in mycobacteria that generates acyl-CoA precursors for mycolic acid and complex lipid biosynthesis, yet its architecture and mechanism of substrate selection have remained unclear. Here we determine pre- and post-reaction states of the endogenous 868-kDa LCC complex from Mycobacterium smegmatis by cryo-electron microscopy at 2.1-3.7 [A] resolution. These structures visualize ATP-dependent redistribution of the biotin carboxyl carrier protein. LCC assembles into an asymmetric 8:2:4:2 organization of AccA3, AccD4, AccD5, and AccE5, with two biotin carboxylase modules flexibly tethered to a heterohexameric carboxyltransferase core. We define the structural basis of substrate selectivity within the CT core: AccD5 selectively binds the short-chain substrate C3-CoA, whereas AccD4 accommodates the long-chain substrate C16-CoA. In addition, we resolve AccD5-centered assemblies that associate with biotin carboxylase modules yet lack AccD4, providing structural evidence that distinct carboxyltransferase cores can engage shared modules to generate alternative holoenzyme architectures. Together, these findings define LCC and AccD5-centered assemblies as elements of a combinatorial acyl-CoA carboxylase platform and establish the structural principles governing assembly-specific function in mycobacteria.

biochemistry↗

Flavodiiron protein activity outcompetes cyclic electron transport when expressed in angiosperm Nicotiana tabacum

In conditions of excess illumination, alternative electron transport pathways in the thylakoid membranes protect the photosynthetic apparatus against damage from eventual over-reduction. Two main pathways downstream of photosystem I (PSI) enable alternative electron flow, mitigating PSI acceptor-side limitation, while contributing to ATP biosynthesis without reducing NADP+ to NADPH: cyclic electron transport (CET) and pseudo-cyclic electron transport (PCET). Flavodiiron proteins (FLV) are crucial enzymes in PCET, found in all photosynthetic organisms but lost during the evolution of angiosperms. The absence of FLV coding sequences in angiosperm genomes raises intriguing questions about their role and function in photosynthetic organisms. Previous studies utilizing heterologous expression have already demonstrated that FLV can function in angiosperms. In this study, Physcomitrium patens FLVA and FLVB coding sequences were stably expressed in wild-type Nicotiana tabacum, a model crop species. Transgenic lines exhibited significantly increased PCET rates, with FLV-dependent electron transport competing for electrons with CET, particularly under sudden increases in light intensity that limited acceptor side limitation. These findings indicate that FLVs are not only active but also play a critical role in protecting from over-reduction the photosynthetic apparatus of Nicotiana tabacum under fluctuating light conditions.

plant biology↗