Sekine Kohsuke, Fujiwara Makoto, Nakayama Masato, Takao Toshifumi, Hase Toshiharu, Sato Naoki
Department of Molecular Biology, Faculty of Science, Saitama University, Japan.
FEBS J. 2007 Apr;274(8):2054-69. doi: 10.1111/j.1742-4658.2007.05748.x. Epub 2007 Mar 19.
Sulfite reductase (SiR) is an important enzyme catalyzing the reduction of sulfite to sulfide during sulfur assimilation in plants. This enzyme is localized in plastids, including chloroplasts, and uses ferredoxin as an electron donor. Ferredoxin-dependent SiR has been found in isolated chloroplast nucleoids, but its localization in vivo or in intact plastids has not been examined. Here, we report the DNA-binding properties of SiRs from pea (PsSiR) and maize (ZmSiR) using an enzymatically active holoenzyme with prosthetic groups. PsSiR binds to both double-stranded and single-stranded DNA without significant sequence specificity. DNA binding did not affect the enzymatic activity of PsSiR, suggesting that ferredoxin and sulfite are accessible to SiR molecules within the nucleoids. Comparison of PsSiR and ZmSiR suggests that ZmSiR does indeed have DNA-binding activity, as was reported previously, but the DNA affinity and DNA-compacting ability are higher in PsSiR than in ZmSiR. The tight compaction of nucleoids by PsSiR led to severe repression of transcription activity in pea nucleoids. Indirect immunofluorescence microscopy showed that the majority of SiR molecules colocalized with nucleoids in pea chloroplasts, whereas no particular localization to nucleoids was detected in maize chloroplasts. These results suggest that SiR plays an essential role in compacting nucleoids in plastids, but that the extent of association of SiR with nucleoids varies among plant species.
亚硫酸盐还原酶(SiR)是植物硫同化过程中催化亚硫酸盐还原为硫化物的一种重要酶。该酶定位于质体中,包括叶绿体,并以铁氧还蛋白作为电子供体。在分离的叶绿体类核中发现了依赖铁氧还蛋白的SiR,但尚未检测其在体内或完整质体中的定位。在此,我们使用具有辅基的酶活性全酶报道了豌豆(PsSiR)和玉米(ZmSiR)中SiR的DNA结合特性。PsSiR能结合双链和单链DNA,且无明显序列特异性。DNA结合不影响PsSiR的酶活性,这表明类核内的SiR分子能够接触到铁氧还蛋白和亚硫酸盐。PsSiR和ZmSiR的比较表明,ZmSiR确实具有DNA结合活性,正如先前报道的那样,但PsSiR的DNA亲和力和DNA压缩能力高于ZmSiR。PsSiR对类核的紧密压缩导致豌豆类核中转录活性受到严重抑制。间接免疫荧光显微镜显示,豌豆叶绿体中大多数SiR分子与类核共定位,而在玉米叶绿体中未检测到SiR对类核的特异性定位。这些结果表明,SiR在质体类核压缩中起重要作用,但SiR与类核的结合程度在不同植物物种间存在差异。