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首页> 外文期刊>Plant physiology >Functional cyanobacterial β-carboxysomes have an absolute requirement for both long and short forms of the CcmM protein
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Functional cyanobacterial β-carboxysomes have an absolute requirement for both long and short forms of the CcmM protein

机译:功能性蓝细菌β-羧基体对长和短形式的CcmM蛋白都有绝对要求

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Carboxysomes are an essential part of the cyanobacterial CO_2-concentrating mechanism, consisting of a protein shell and an interior of Rubisco. The b-carboxysome shell protein CcmM forms two peptides via a proposed internal ribosomal entry site (IRES) within the ccmM transcript in Synechococcus PCC7942. The abundant short form (35 kD, M35) consists of Rubisco small subunit-like repeats and binds Rubisco. The lower abundance long form (58 kD, M58) also contains a g-carbonic anhydraselike domain, which binds the carboxysomal carbonic anhydrase, CcaA. We examined whether these CcmM forms arise via an IRES or by other means. Mutations of a putative internal start codon (GTG) and Shine-Dalgarno sequence within ccmM, along with a gene coding for M35 alone, were examined in the high-CO_2-requiring (HCR) carboxysomeless mutant, DccmM. Expression of wild-type ccmM in DccmM restored the wild-type phenotype, while mutation of putative start and ShineDalgarno sequences led to as much as 20-fold reduction in M35 content with no recovery from HCR phenotype. These cells also contained small electron-dense structures. Cells producing little or no M58, but sufficient M35, were found to contain large electron-dense structures, no CcaA, and had a HCR phenotype. Large subcellular aggregates can therefore form in the absence of M58, suggesting a role for M35 in internal carboxysome Rubisco packing. The results confirm that M35 is independently translated via an IRES within ccmM. Importantly, the data reveal that functional carboxysomes require both M35 and M58 in sufficient quantities and with a minimum stoichiometry of close to 1:1.
机译:羧基是蓝藻CO_2浓缩机制的重要组成部分,它由蛋白质壳和Rubisco内部组成。 b-羧化壳蛋白CcmM通过拟南芥PCC7942中ccmM转录物中的拟议内部核糖体进入位点(IRES)形成两个肽。丰富的短形式(35 kD,M35)由Rubisco小亚基样重复序列组成并结合Rubisco。较低丰度的长形式(58 kD,M58)也包含一个g-碳酸酐酶样结构域,该结构域结合了羧基体碳酸酐酶CcaA。我们检查了这些CcmM形式是否通过IRES或其他方式产生。在需要高CO_2(HCR)的无羧基脂质体突变体DccmM中检查了ccmM中推定的内部起始密码子(GTG)和Shine-Dalgarno序列的突变,以及仅编码M35的基因。 DccmM中野生型ccmM的表达恢复了野生型表型,而假定的起始序列和ShineDalgarno序列的突变导致M35含量降低了20倍,而没有从HCR表型中恢复。这些电池还包含小的电子致密结构。发现产生很少或不产生M58,但是产生足够的M35的细胞含有大的电子致密结构,没有CcaA,并且具有HCR表型。因此,在不存在M58的情况下可以形成大的亚细胞聚集体,表明M35在内部羧基脂质体Rubisco填料中起作用。结果证实,M35通过ccmM中的IRES独立翻译。重要的是,数据表明功能性羧基体需要足够量的M35和M58,最小化学计量比接近1:1。

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