Mercuri F A, Doege K J, Arner E C, Pratta M A, Last K, Fosang A J
Department of Paediatrics, Orthopaedic Molecular Biology Research Unit, University of Melbourne, Royal Children's Hospital, Parkville 3052, Australia.
J Biol Chem. 1999 Nov 5;274(45):32387-95. doi: 10.1074/jbc.274.45.32387.
A recombinant human aggrecan G1-G2 fragment comprising amino acids Val(1)-Arg(656) has been expressed in Sf21 cells using a baculovirus expression system. The recombinant G1-G2 (rG1-G2) was purified to homogeneity by hyaluronan-Sepharose affinity chromatography followed by high performance liquid chromatography gel filtration, and gave a single band of M(r) 90,000-95,000 by silver stain or immunoblotting with monoclonal antibody 1-C-6. The expressed G1-G2 bound to both hyaluronan and link protein indicating that the immunoglobulin-fold motif and proteoglycan tandem repeat loops of the G1 domain were correctly folded. Further analysis of secondary structure by rotary shadowing electron microscopy confirmed a double globe appearance, but revealed that the rG1-G2 was more compact than its native counterpart. The size of rG1-G2 by SDS-polyacrylamide gel electorphoresis was unchanged following digestion with keratanase and keratanase II and reduced by only 2-5 kDa following digestion with either O-glycosidase or N-glycosidase F. Recombinant G1-G2 was digested with purified matrix metalloproteinases (MMP), isolated aggrecanase, purified atrolysin C, or proteinases present in conditioned medium from cartilage explant cultures, and the products analyzed on SDS gels by silver stain and immunoblotting. Neoepitope antibodies recognizing the N-terminal F(342)FGVG or C-terminal DIPEN(341) sequences were used to confirm MMP cleavage at the Asn(341) downward arrow Phe bond, while neoepitope antibodies recognizing the N-terminal A(374)RGSV or C-terminal ITEGE(373) sequences were used to confirm aggrecanase cleavage at the Glu(373) downward arrow Ala bond. Cleavage at the authentic MMP and aggrecanase sites revealed that these proteinases have the same specificity for rG1-G2 as for native aggrecan. Incubation of rG1-G2 with conditioned medium from porcine cartilage cultures revealed that active soluble aggrecanase but no active MMPs, was released following stimulation with interleukin-1alpha or retinoic acid. Atrolysin C, which cleaves native bovine aggrecan at both the aggrecanase and MMP sites, efficiently cleaved rG1-G2 at the aggrecanase site but failed to cleave at the MMP site. In contrast, native glycosylated G1-G2 with or without keratanase treatment was cleaved by atrolysin C at both the aggrecanase and MMP sites. The results suggest that the presence or absence per se of keratan sulfate on native G1-G2 does not affect the activity of atrolysin C toward the two sites.
一种包含缬氨酸(1)-精氨酸(656)氨基酸的重组人聚集蛋白聚糖G1-G2片段已使用杆状病毒表达系统在Sf21细胞中表达。重组G1-G2(rG1-G2)通过透明质酸-琼脂糖亲和层析,随后进行高效液相色谱凝胶过滤,纯化至同质,经银染或用单克隆抗体1-C-6免疫印迹显示,其分子量为90,000-95,000处呈现单一条带。表达的G1-G2与透明质酸和连接蛋白均结合,表明G1结构域的免疫球蛋白折叠基序和蛋白聚糖串联重复环正确折叠。通过旋转阴影电子显微镜对二级结构的进一步分析证实其呈双球状外观,但显示rG1-G2比其天然对应物更紧密。经角蛋白酶和角蛋白酶II消化后,rG1-G2在SDS-聚丙烯酰胺凝胶电泳中的大小不变,而经O-糖苷酶或N-糖苷酶F消化后仅减小2-5 kDa。用纯化的基质金属蛋白酶(MMP)、分离的聚集蛋白聚糖酶、纯化的解整合素金属蛋白酶C或软骨外植体培养条件培养基中存在的蛋白酶消化重组G1-G2,并通过银染和免疫印迹在SDS凝胶上分析产物。识别N端F(342)FGVG或C端DIPEN(341)序列的新表位抗体用于确认MMP在天冬酰胺(341)→苯丙氨酸键处的切割,而识别N端A(374)RGSV或C端ITEGE(373)序列的新表位抗体用于确认聚集蛋白聚糖酶在谷氨酸(373)→丙氨酸键处的切割。在真实的MMP和聚集蛋白聚糖酶切割位点的切割表明,这些蛋白酶对rG1-G2的特异性与对天然聚集蛋白聚糖的特异性相同。将rG1-G2与猪软骨培养条件培养基一起孵育发现,用白细胞介素-1α或视黄酸刺激后释放出活性可溶性聚集蛋白聚糖酶,但未释放出活性MMP。解整合素金属蛋白酶C可在聚集蛋白聚糖酶和MMP位点切割天然牛聚集蛋白聚糖,它能有效切割rG1-G在聚集蛋白聚糖酶位点的片段,但不能在MMP位点切割。相反,经或未经角蛋白酶处理的天然糖基化G1-G2在聚集蛋白聚糖酶和MMP位点均被解整合素金属蛋白酶C切割。结果表明,天然G1-G2上硫酸角质素的存在与否本身并不影响解整合素金属蛋白酶C对这两个位点的活性。