Haines Rebecca L, Codlin Sandra, Mole Sara E
MRC Laboratory for Molecular Cell Biology, UCL Institute of Child Health, University College London, Gower Street, London, UK.
Dis Model Mech. 2009 Jan-Feb;2(1-2):84-92. doi: 10.1242/dmm.000851. Epub 2008 Dec 22.
The function of the CLN3 protein, which is mutated in patients with the neurodegenerative lysosomal storage disorder Batten disease, has remained elusive since it was identified 13 years ago. Here, we exploited the Schizosaccharomyces pombe model to gain new insights into CLN3 function. We modelled all missense mutations of CLN3 in the orthologous protein Btn1p, as well as a series of targeted mutations, and assessed trafficking and the ability of the mutant proteins to rescue four distinct phenotypes of btn1Delta cells. Mutating the C-terminal cysteine residues of Btn1p caused it to be internalised into the vacuole, providing further evidence that this protein functions from pre-vacuole compartments. Mutations in the lumenal regions of the multi-spanning membrane protein, especially in the third lumenal domain which contains a predicted amphipathic helix, had the most significant impact on Btn1p function, indicating that these domains of CLN3 are functionally important. Only one mutant protein was able to rescue the cell curving phenotype (p.Glu295Lys), and since this mutation is associated with a very protracted disease progression, this phenotype could be used to predict the disease severity of novel mutations in CLN3. The ability to predict disease phenotypes in S. pombe confirms this yeast as an invaluable tool to understanding Batten disease.
在神经退行性溶酶体贮积症巴滕病患者中发生突变的CLN3蛋白的功能,自13年前被发现以来一直难以捉摸。在此,我们利用粟酒裂殖酵母模型来深入了解CLN3的功能。我们在直系同源蛋白Btn1p中模拟了CLN3的所有错义突变,以及一系列靶向突变,并评估了突变蛋白的转运情况以及拯救btn1Delta细胞四种不同表型的能力。Btn1p的C端半胱氨酸残基发生突变会导致其被内化到液泡中,这进一步证明该蛋白在前液泡区室发挥功能。多跨膜蛋白腔内区域的突变,尤其是在包含预测两性螺旋的第三个腔内结构域中的突变,对Btn1p功能影响最为显著,表明CLN3的这些结构域在功能上很重要。只有一种突变蛋白能够拯救细胞弯曲表型(p.Glu295Lys),并且由于这种突变与非常缓慢的疾病进展相关,该表型可用于预测CLN3新突变的疾病严重程度。在粟酒裂殖酵母中预测疾病表型的能力证实了这种酵母是理解巴滕病的宝贵工具。