In vivo activities of heparan sulfate differentially modified by NDSTs during development

E. Nakato, Sarah Baker, A. Kinoshita-Toyoda, Collin Knudsen, Yi‐Si Lu, Masahiko Takemura, Hidenao Toyoda, H. Nakato
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Abstract

Heparan sulfate proteoglycans (HSPGs) serve as co‐receptors for growth factor signaling during development. It is well known that the level and patterns of sulfate groups of heparan sulfate (HS) chains, or HS fine structures, have a major impact on HSPG function. On the other hand, the physiological significance of other structural features of HS, including NS/NA domain organization, remains to be elucidated. A blueprint of the HS domain structures is mainly controlled by HS N‐deacetylase/N‐sulfotransferases (NDSTs). To analyze in vivo activities of differentially modified HS, we established two knock‐in (KI) Drosophila strains with the insertion of mouse Ndst1 (mNdst1) or Ndst2 (mNdst2) in the locus of sulfateless (sfl), the only Drosophila NDST. In these KI lines, mNDSTs are expressed from the sfl locus, in the level and patterns identical to the endogenous sfl gene. Thus, phenotypes of Ndst1 KI and Ndst2KI animals reflect the ability of HS structures made by these enzymes to rescue sfl mutation. Remarkably, we found that mNdst1 completely rescued the loss of sfl. mNdst2 showed a limited rescue ability, despite a higher level of HS sulfation compared to HS in mNdst1 KI. Our study suggests that independent of sulfation levels, additional HS structural features controlled by NDSTs play key roles during tissue patterning.
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发育过程中被 NDSTs 不同修饰的硫酸肝素的体内活性
硫酸肝素蛋白聚糖(HSPGs)在发育过程中是生长因子信号的共受体。众所周知,硫酸肝素(HS)链上硫酸基团的水平和模式或 HS 的精细结构对 HSPG 的功能有重大影响。另一方面,HS 的其他结构特征(包括 NS/NA 结构域组织)的生理意义仍有待阐明。HS结构域的蓝图主要由HS N-脱乙酰酶/N-硫转移酶(NDSTs)控制。为了分析不同修饰的HS在体内的活性,我们在果蝇唯一的NDST--无硫(ssl)基因座上插入了小鼠Ndst1(mNdst1)或Ndst2(mNdst2),建立了两个基因敲入(KI)果蝇品系。在这些 KI 株系中,mNDSTs 从 sfl 基因座表达,表达水平和模式与内源 sfl 基因相同。因此,Ndst1 KI 和 Ndst2KI 动物的表型反映了这些酶产生的 HS 结构挽救 sfl 突变的能力。值得注意的是,我们发现 mNdst1 能完全拯救 sfl 基因的缺失,而 mNdst2 的拯救能力有限,尽管与 mNdst1 KI 中的 HS 相比,mNdst2 的 HS 硫酸化水平更高。我们的研究表明,与硫酸化水平无关,由 NDSTs 控制的其他 HS 结构特征在组织形态形成过程中发挥着关键作用。
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