Department of Chemistry, University of Nebraska, Lincoln, Nebraska 68588-0304, United States.
Department of Molecular Physiology and Biophysics, Vanderbilt University, Nashville, Tennessee 37232, United States.
J Am Chem Soc. 2023 Nov 29;145(47):25726-25736. doi: 10.1021/jacs.3c09184. Epub 2023 Nov 14.
We report complex formation between the chloroacetamide 2,6-diazaadamantane nitroxide radical (ClA-DZD) and cucurbit[7]uril (CB-7), for which the association constant in water, = 1.9 × 10 M, is at least 1 order of magnitude higher than the previously studied organic radicals. The radical is highly immobilized by CB-7, as indicated by the increase in the rotational correlation time, τ, by a factor of 36, relative to that in the buffer solution. The X-ray structure of ClA-DZD@CB-7 shows the encapsulated DZD guest inside the undistorted CB-7 host, with the pendant group protruding outside. Upon addition of CB-7 to T4 Lysozyme (T4L) doubly spin-labeled with the iodoacetamide derivative of DZD, we observe the increase in τ and electron spin coherence time, , along with the narrowing of interspin distance distributions. Sensitivity of the DEER measurements at 83 K increases by a factor 4-9, compared to the common spin label such as MTSL, which is not affected by CB-7. Interspin distances of 3 nm could be reliably measured in water/glycerol up to temperatures near the glass transition/melting temperature of the matrix at 200 K, thus bringing us closer to the goal of supramolecular recognition-enabled long-distance DEER measurements at near physiological temperatures. The X-ray structure of DZD-T4L 65 at 1.12 Å resolution allows for unambiguous modeling of the DZD label (0.88 occupancy), indicating an undisturbed structure and conformation of the protein.
我们报告了氯乙酰胺 2,6-二氮杂金刚烷氮氧自由基(ClA-DZD)与瓜环(CB-7)之间的复合物形成,其在水中的结合常数, = 1.9×10 M,至少比以前研究的有机自由基高 1 个数量级。自由基被 CB-7 高度固定,这表明旋转相关时间 τ增加了 36 倍,相对于缓冲溶液中的 τ。ClA-DZD@CB-7 的 X 射线结构表明,包封的 DZD 客体位于未变形的 CB-7 主体内,而侧基突出在外面。当 CB-7 加入到 T4 溶菌酶(T4L)时,T4L 用 DZD 的碘乙酰胺衍生物双重自旋标记,我们观察到 τ 和电子自旋相干时间, 增加,同时自旋间距分布变窄。与常见的自旋标记物如 MTSL 相比,在 83 K 下的 DEER 测量的灵敏度提高了 4-9 倍,MTSL 不受 CB-7 的影响。在水/甘油中,在接近基质玻璃化转变/熔点的 200 K 温度下,可可靠地测量 3 nm 的自旋间距,从而使我们更接近在接近生理温度下实现基于超分子识别的长距离 DEER 测量的目标。分辨率为 1.12 Å 的 DZD-T4L 65 的 X 射线结构允许对 DZD 标记(0.88 占有率)进行明确建模,表明蛋白质结构和构象未受干扰。