Tiburu Elvis K, Gulla Stefano V, Tiburu Mark, Janero David R, Budil David E, Makriyannis Alexandros
Center for Drug Discovery, Northeastern University, Boston, Massachusetts 02115-5000, USA.
Biochemistry. 2009 Jun 9;48(22):4895-904. doi: 10.1021/bi802235w.
The influence of membrane environment on human cannabinoid 1 (hCB(1)) receptor transmembrane helix (TMH) conformational dynamics was investigated by solid-state NMR and site-directed spin labeling/EPR with a synthetic peptide, hCB(1)(T377-E416), corresponding to the receptor's C-terminal component, i.e., TMH7 and its intracellular alpha-helical extension (H8) (TMH7/H8). Solid-state NMR experiments with mechanically aligned hCB(1)(T377-E416) specifically (2)H- or (15)N-labeled at Ala380 and reconstituted in membrane-mimetic dimyristoylphosphocholine (DMPC) or 1-palmitoyl-2-oleoyl-sn-glycerophosphocholine (POPC) bilayers demonstrate that the conformation of the TMH7/H8 peptide is more heterogeneous in the thinner DMPC bilayer than in the thicker POPC bilayer. As revealed by EPR studies on hCB(1)(T377-E416) spin-labeled at Cys382 and reconstituted into the phospholipid bilayers, the spin label partitions actively between hydrophobic and hydrophilic environments. In the DMPC bilayer, the hydrophobic component dominates, regardless of temperature. Mobility parameters (DeltaH(0)(-1)) are 0.3 and 0.73 G for the peptide in the DMPC or POPC bilayer environment, respectively. Interspin distances of doubly labeled hCB(1)(T377-E416) peptide reconstituted into a TFE/H(2)O mixture or a POPC or DMPC bilayer were estimated to be 10.6 +/- 0.5, 16.8 +/- 1, and 11.6 +/- 0.8 A, respectively. The extent of coupling (>or=50%) between spin labels located at i and i + 4 in a TFE/H(2)O mixture or a POPC bilayer is indicative of an alpha-helical TMH conformation, whereas the much lower coupling (14%) when the peptide is in a DMPC bilayer suggests a high degree of peptide conformational heterogeneity. These data demonstrate that hCB(1)(T377-E416) backbone dynamics as well as spin-label rotameric freedom are sensitive to and altered by the peptide's phospholipid bilayer environment, which exerts a dynamic influence on the conformation of a TMH critical to signal transmission by the hCB(1) receptor.
通过固态核磁共振(NMR)以及定点自旋标记/电子顺磁共振(EPR)技术,利用一条合成肽hCB(1)(T377 - E416),对应于受体的C端组分,即跨膜螺旋7(TMH7)及其胞内α螺旋延伸段(H8)(TMH7/H8),研究了膜环境对人大麻素1(hCB(1))受体跨膜螺旋(TMH)构象动力学的影响。对在Ala380处特异性地用(2)H或(15)N标记并重构于模拟膜的二肉豆蔻酰磷脂酰胆碱(DMPC)或1 - 棕榈酰 - 2 - 油酰 - sn - 甘油磷脂酰胆碱(POPC)双层膜中的机械排列的hCB(1)(T377 - E416)进行固态NMR实验表明,TMH7/H8肽在较薄的DMPC双层膜中的构象比在较厚的POPC双层膜中更具异质性。通过对在Cys382处自旋标记并重构到磷脂双层膜中的hCB(1)(T377 - E416)进行EPR研究发现,自旋标记物在疏水和亲水环境之间有活跃的分配。在DMPC双层膜中,无论温度如何,疏水成分占主导。在DMPC或POPC双层膜环境中,该肽的迁移率参数(DeltaH(0)(-1))分别为0.3和0.73 G。重构到TFE/H(2)O混合物或POPC或DMPC双层膜中的双标记hCB(1)(T377 - E416)肽的自旋间距离估计分别为10.6 +/- 0.5、16.8 +/- 1和11.6 +/- 0.8 Å。在TFE/H(2)O混合物或POPC双层膜中,位于i和i + 4位置的自旋标记物之间的耦合程度(>或 = 50%)表明是α螺旋TMH构象,而当该肽处于DMPC双层膜中时耦合程度低得多(14%),这表明肽的构象具有高度异质性。这些数据表明,hCB(1)(T377 - E416)的主链动力学以及自旋标记的旋转异构体自由度对肽的磷脂双层膜环境敏感并受其影响,该环境对hCB(1)受体信号传递至关重要的TMH构象产生动态影响。