Commuri P D, Keeling P L
ExSeed Genetics LLC, 2901 South Loop Dr Bldg #3, Suite 3360, ISU Research Park, Ames, IA 50010, USA.
Plant J. 2001 Mar;25(5):475-86. doi: 10.1046/j.1365-313x.2001.00955.x.
It is widely known that some of the starch synthases and starch-branching enzymes are trapped inside the starch granule matrix during the course of starch deposition in amyloplasts. The objective of this study was to use maize SSI to further our understanding of the protein domains involved in starch granule entrapment and identify the chain-length specificities of the enzyme. Using affinity gel electrophoresis, we measured the dissociation constants of maize SSI and its truncated forms using various glucans. The enzyme has a high degree of specificity in terms of its substrate-enzyme dissociation constant, but has a greatly elevated affinity for increasing chain lengths of alpha-1, 4 glucans. Deletion of the N-terminal arm of SSI did not affect the Kd value. Further small deletions of either N- or C-terminal domains resulted in a complete loss of any measurable affinity for its substrate, suggesting that the starch-affinity domain of SSI is not discrete from the catalytic domain. Greater affinity was displayed for the amylopectin fraction of starch as compared to amylose, whereas glycogen revealed the lowest affinity. However, when the outer chain lengths (OCL) of glycogen were extended using the phosphorylase enzyme, we found an increase in affinity for SSI between an average OCL of 7 and 14, and then an apparently exponential increase to an average OCL of 21. On the other hand, the catalytic ability of SSI was reduced several-fold using these glucans with extended chain lengths as substrates, and most of the label from [14C]ADPG was incorporated into shorter chains of dp < 10. We conclude that the rate of catalysis of SSI enzyme decreases with the OCL of its glucan substrate, and it has a very high affinity for the longer glucan chains of dp approximately 20, rendering the enzyme catalytically incapable at longer chain lengths. Based on the observations in this study, we propose that during amylopectin synthesis shorter A and B1 chains are extended by SSI up to a critical chain length that soon becomes unsuitable for catalysis by SSI and hence cannot be elongated further by this enzyme. Instead, SSI is likely to become entrapped as a relatively inactive protein within the starch granule. Further glucan extension for continuation of amylopectin synthesis must require a handover to other SS enzymes which can extend the glucan chains further or for branching by branching enzymes. If this is correct, this proposal provides a biochemical basis to explain how the specificities of various SS enzymes determine and set the limitations on the length of A, B, C chains in the starch granule.
众所周知,在淀粉质体中淀粉沉积过程中,一些淀粉合酶和淀粉分支酶被困在淀粉颗粒基质内。本研究的目的是利用玉米SSI进一步了解参与淀粉颗粒截留的蛋白质结构域,并确定该酶的链长特异性。使用亲和凝胶电泳,我们用各种葡聚糖测量了玉米SSI及其截短形式的解离常数。该酶在底物-酶解离常数方面具有高度特异性,但对α-1,4葡聚糖链长度增加具有显著提高的亲和力。删除SSI的N端臂不影响Kd值。进一步对N端或C端结构域进行小的缺失导致对其底物的任何可测量亲和力完全丧失,这表明SSI的淀粉亲和力结构域与催化结构域并非分离的。与直链淀粉相比,该酶对淀粉的支链淀粉部分表现出更高的亲和力,而糖原的亲和力最低。然而,当用磷酸化酶延长糖原的外链长度(OCL)时,我们发现平均OCL为7至14时对SSI的亲和力增加,然后在平均OCL为21时明显呈指数增加。另一方面,以这些链长延长的葡聚糖为底物时,SSI的催化能力降低了几倍,并且[14C]ADPG的大部分标记掺入到dp < 10的较短链中。我们得出结论,SSI酶的催化速率随其葡聚糖底物的OCL降低,并且它对dp约为20的较长葡聚糖链具有非常高的亲和力,使得该酶在较长链长时无催化能力。基于本研究中的观察结果,我们提出在支链淀粉合成过程中,较短的A链和B1链由SSI延长至临界链长,该链长很快变得不适于SSI催化,因此不能被该酶进一步延长。相反,SSI可能作为相对无活性的蛋白质被困在淀粉颗粒内。支链淀粉合成继续进行的进一步葡聚糖延长必须需要移交给其他SS酶,这些酶可以进一步延长葡聚糖链或由分支酶进行分支。如果这是正确的,该提议提供了一个生化基础来解释各种SS酶的特异性如何决定并设定淀粉颗粒中A、B、C链长度的限制。