Abstract Cell-membrane signaling and trafficking rely on proteins that associate with lipid bilayers through dynamic, low-affinity interactions. Defining how these proteins dock onto membrane surfaces is therefore essential for understanding their function. While Neutron Reflectometry (NR) combined with molecular dynamics (MD) simulations is frequently used, complementary approaches that do not require access to large-scale neutron facilities are needed. Here, we establish membrane Paramagnetic Relaxation Enhancement (mPRE) Nuclear Magnetic Resonance (NMR), combined with nanodiscs as membrane mimics and optimized acquisition strategies, as an accessible solution for extracting membrane–protein distance constraints even for weakly bound systems. Using the PI(4,5)P₂-binding ASAP1 Pleckstrin Homology (PH) domain as a model, we show that both conventional mPRE and a new dynamic-exchange mPRE (EX-mPRE) method reproduce the membrane orientation obtained by NR. In addition, we show that increasing PI(4,5)P₂ levels to mimic nanoscale membrane clustering broadened the orientational distribution of ASAP1 PH. EX-mPRE, which transfers PREs from transient bound states to the observable free state, further enables studies of temperature-sensitive or rapidly exchanging membrane interactions. Together, these results provide the formalism and establish mPRE and EX-mPRE NMR as a powerful alternative for resolving the membrane orientation of peripheral proteins and for probing how lipid composition affects their behavior.
ASAP1 is a multidomain Arf GTPase-activating protein (ArfGAP) that catalyzes GTP hydrolysis on the small GTPase Arf1 and is implicated in cancer progression. The PH domain of ASAP1 enhances its activity greater than 7 orders of magnitude but the underlying mechanisms remain poorly understood. Here, we combined Nuclear Magnetic Resonance (NMR), Molecular Dynamic (MD) simulations and mathematical modeling of functional data to build a comprehensive structural-mechanistic model of the complex of Arf1 and the ASAP1 PH domain on a membrane surface. Our results support a new conceptual model in which the PH domain contributes to efficient catalysis not only by membrane recruitment but by acting as a critical component of the catalytic interface, binding Arf·GTP and allosterically driving it towards the catalytic transition state. We discuss the biological implications of these results and how they may apply more broadly to poorly understood membrane-dependent regulatory mechanisms controlling catalysis of the ArfGAP superfamily as well as other peripheral membrane enzymes.
GTPase-activating proteins are important regulators of small GTPases; among these, ASAP1 stimulates GTP hydrolysis on Arf1 and is implicated in cancer progression. ASAP1 contains a Pleckstrin Homology (PH) domain essential for maximum Arf·GTP hydrolysis. The prevailing view of PH domains is that they regulate proteins through passive mechanisms like membrane recruitment. In sharp contrast, we show that the PH domain of ASAP1 actively contributes to Arf1 GTP hydrolysis. By combining NMR, molecular dynamics simulations, kinetic assays, and mutational analysis, we find that the PH domain binds Arf·GTP at the membrane, to establish an active state primed for GTP hydrolysis. We identify key residues on the PH domain and Arf that drive this allosteric mechanism, which mathematical modeling shows contributes as much to GTPase activation as membrane recruitment. The finding that PH domains directly modulate small GTPases has broad implications for the Ras and Rho oncoprotein families.
ASAP1 is an Arf GTPase activating proteins (ARFGAP) which regulates the small GTPase Arf1 by hydrolyzing Arf-GTP to Arf-GDP. Over expression of ASAP1 has been linked to metastasis in several cancers. The catalytic domain of ASAP1—referred to as ASAP1-PZA—is composed of a Pleckstrin homology (PH) domain, immediately N-terminal to the catalytic Arf GAP domain (ZA domain); these two domains are connected by a short linker. For a protein as large as ASAP1-PZA, spectral crowding can hinder the collection of clear, high-quality NMR spectra.
The ADP-ribosylation factors (Arfs) constitute a family of small GTPases within the Ras superfamily, with a distinguishing structural feature of a hypervariable N-terminal extension of the G domain modified with myristate. Arf proteins, including Arf1, have roles in membrane trafficking and cytoskeletal dynamics. While screening for Arf1:small molecule co-crystals, we serendipitously solved the crystal structure of the non-myristoylated engineered mutation [L8K]Arf1 in complex with a GDP analogue. Like wild-type (WT) non-myristoylated Arf1•GDP, we observed that [L8K]Arf1 exhibited an N-terminal helix that occludes the hydrophobic cavity that is occupied by the myristoyl group in the GDP-bound state of the native protein. However, the helices were offset from one another due to the L8K mutation, with a significant change in position of the hinge region connecting the N-terminus to the G domain. Hypothesizing that the observed effects on behavior of the N-terminus affects interaction with regulatory proteins, we mutated two hydrophobic residues to examine the role of the N-terminal extension for interaction with guanine nucleotide exchange factors (GEFs) and GTPase Activating Proteins (GAPs. Different than previous studies, all mutations were examined in the context of myristoylated Arf. Mutations had little or no effect on spontaneous or GEF-catalyzed guanine nucleotide exchange but did affect interaction with GAPs. [F13A]myrArf1 was less than 1/2500, 1/1500, and 1/200 efficient as substrate for the GAPs ASAP1, ARAP1 and AGAP1; however, [L8A/F13A]myrArf1 was similar to WT myrArf1. Using molecular dynamics simulations, the effect of the mutations on forming alpha helices adjacent to a membrane surface was examined, yet no differences were detected. The results indicate that lipid modifications of GTPases and consequent anchoring to a membrane influences protein function beyond simple membrane localization. Hypothetical mechanisms are discussed.
T-cell therapies based on chimeric antigen receptor (CAR) targeting of a tumor-specific antigen offer hope for patients with relapsed or refractory cancers. CAR hinge and transmembrane regions link antigen recognition domains to intracellular signal transduction domains. Here, we apply biophysical methods to characterize the structure and dynamic properties of the CD28 CAR hinge (CD28H) used in an FDA-approved CD19 CAR for the treatment of B-lineage leukemia/lymphoma. By using nuclear Overhauser effect spectroscopy (NOESY), which detects even transiently occupied structural motifs, we observed otherwise elusive local structural elements amidst overall disorder in CD28H, including a conformational switch from a native β-strand to a 310-helix and polyproline II helix-like structure. These local structural motifs contribute to an overall loosely formed extended geometry that could be captured by NOESY data. All FDA-approved CARs use prolines in the hinge region, which we find in CD28, and previously in CD8α, isomerize to promote structural plasticity and dynamics. These local structural elements may function in recognition and signaling events and constrain the spacing between the transmembrane and antigen recognition domains. Our study thus demonstrates a method for detecting local and transient structure within intrinsically disordered systems and moreover, our CD28H findings may inform future CAR design.
It is common for NMR relaxation dispersion experiments to suggest an absence of dynamics despite anecdotal indications of conformational dynamics. We explore the potential explanations and approaches to this conundrum. Some inconsistencies have been observed between two relaxation dispersion experiments, Carr-Purcell-Meiboom-Gill (CPMG) and adiabatic relaxation dispersion experiments, in recent dynamic studies of different biomolecules. Theoretical analyses show that such seemingly paradoxical results might come from a complex exchange topology that is concealed by the application of the simple two-site exchange model for interpretation of the relaxation dispersion data. Scenarios are explored and revealed in which the presence of complex millisecond conformational exchange could suppress the amplitude of CPMG relaxation dispersion profiles, even when the exchange rates are within the detectable range of the experiments. With experimental errors, the suppressed relaxation dispersion profiles could lead to the conclusion of "no millisecond conformational exchange". However, such hidden dynamics can potentially be detected by adiabatic relaxation dispersion experiments. Finally, we demonstrate some advantages of adiabatic relaxation dispersion experiments over conventional relaxation dispersion experiments and a simplified computational approach to analyze the adiabatic relaxation dispersion profiles.
Pleckstrin Homology (PH) domains often occur in tandem with catalytic domains, regulating the catalytic function. Of these proteins, several contribute to carcinogenesis or cancer progression. ASAP1, an Arf GTPase-activating protein, is a model of a protein with a PH domain—Arf GAP domain tandem that mediates PIP2-dependent hydrolysis of the ASAP1 substrate, Arf·GTP into Arf·GDP. The interaction is critical for catalysis, but the molecular basis for its contribution is not yet known. Here, we examined the interface between Arf1 and ASAP1 PH at the membrane surface by nuclear magnetic resonance (NMR) and molecular dynamics (MD) simulation methods.
The deamidases secreted by Burkholderia pseudomallei and Enteropathogenic Ecoli modify the residue 40 in ubiquitin from a Glutamine (Q) to Glutamate (E), triggering several downstream processes to cause cell cycle arrest and activate immune responses. Deamidation hampers the activity of ubiquitin and its interaction with ubiquitin chain receptors by an unknown mechanism. Here, we study the effect of deamidation on ubiquitin structure and dynamics. We report the crystal structure of the deamidated ubiquitin, supported by NMR and molecular dynamics simulations. The structure reveals a new intra-molecular salt bridge between the deamidated region and the C-terminal tail of ubiquitin. The salt bridge perturbs the dynamics of the ubiquitin tail to reduce affinity for ubiquitin receptors like the p62 ubiquitin-associated domain. The salt bridge disrupts the transition to catalytically active E2~Ub closed conformation. Consequently, RING E3s fail to interact with E2~Ub, reducing ubiquitination activity. Our findings reveal that deamidation-induced intramolecular salt bridges in ubiquitin modulate conformational ensembles to inactivate ubiquitination.
NMR spectroscopy has been applied to virtually all sites within proteins and biomolecules; however, the observation of sulfur sites remains very challenging. Recent studies have examined 77Se as a replacement for sulfur and applied 77Se NMR in both the solution and solid states. As a spin-1/2 nuclide, 77Se is attractive as a probe of sulfur sites, and it has a very large chemical shift range (due to a large chemical shift anisotropy), which makes it potentially very sensitive to structural and/or binding interactions as well as dynamics. Despite being a spin-1/2 nuclide, there have been rather limited studies of 77Se, and the ability to use 1H-indirect detection has been sparse. Some examples exist, but in the absence of a directly bonded, nonexchangeable 1H, these have been largely limited to smaller molecules. We develop and illustrate approaches using double-labeling of 13C and 77Se in proteins that enable more sensitive triple-resonance schemes via multistep coherence transfers and 1H-detection. These methods require specialized hardware and decoupling schemes, which we developed and will be discussed.
ADP-ribosylation factor (Arf) GTPase-activating proteins (GAPs) are enzymes that need to bind to membranes to catalyze the hydrolysis of GTP bound to the small GTP-binding protein Arf1. Simultaneous binding of the Pleckstrin homology (PH) domain of the ArfGAP ASAP1 to membranes containing the phosphatidylinositol phosphate PIP(4,5)P2 and to Arf1.GTP is key for maximum GTP hydrolysis, but is not fully understood. Recently, we showed that binding of multiple PI(4,5)P2 molecules to the ASAP1 PH domain triggers an allosteric conformational switch (PIP switch) involving regions distant from the membrane interface. Here, we examined the interface between Arf1 and ASAP1 PH at the membrane surface of nanodiscs by Nuclear Magnetic Resonance (NMR) methods. Chemical Shift Perturbations (CSPs) observed upon complex formation and distance restraints obtained from Paramagnetic Relaxation Enhancement (PRE) NMR experiments between multiple MTSL-tagged Arf1 mutants and isotopically labeled ASAP1 PH were combined to build a model of the Arf1:ASAP1 PH complex at the membrane. Interestingly, the PIP switch resides at the interface between Arf1 and ASAP1 PH, shedding light on how PIP binding to ASAP1 PH may affect GTP hydrolysis.
The ADP-ribosylation factor (Arf) GTPases and their regulatory proteins are implicated in cancer progression. NAV-2729 was previously identified as a specific inhibitor of Arf6 that reduced progression of uveal melanoma in an orthotopic xenograft. Here, our goal was to assess the inhibitory effects of NAV-2729 on the proliferation of additional cell types. We found NAV-2729 inhibited proliferation of multiple cell lines, but Arf6 expression did not correlate with NAV-2729 sensitivity, and knockdown of Arf6 affected neither cell viability nor sensitivity to NAV-2729. Furthermore, binding to native Arf6 was not detected; however, we determined that NAV-2729 inhibited both Arf exchange factors and Arf GTPase-activating proteins. ASAP1, a GTPase-activating protein linked to cancer progression, was further investigated. We demonstrated that NAV-2729 bound to the PH domain of ASAP1 and changed ASAP1 cellular distribution. However, ASAP1 knockdown did not fully recapitulate the cytoskeletal effects of NAV-2729 nor affect cell proliferation. Finally, our screens identified 48 other possible targets of NAV-2729. These results illustrate the complexities of defining targets of small molecules and identify NAV-2729 as a model PH domain-binding inhibitor.
ADP-ribosylation factor 1 (Arf1) interacts with multiple cellular partners and membranes to regulate intracellular traffic, organelle structure and actin dynamics. Defining the dynamic conformational landscape of Arf1 in its active form, when bound to the membrane, is of high functional relevance and key to understanding how Arf1 can alter diverse cellular processes. Through concerted application of nuclear magnetic resonance (NMR), neutron reflectometry (NR) and molecular dynamics (MD) simulations, we show that, while Arf1 is anchored to the membrane through its N-terminal myristoylated amphipathic helix, the G domain explores a large conformational space, existing in a dynamic equilibrium between membrane-associated and membrane-distal conformations. These configurational dynamics expose different interfaces for interaction with effectors. Interaction with the Pleckstrin homology domain of ASAP1, an Arf-GTPase activating protein (ArfGAP), restricts motions of the G domain to lock it in what seems to be a conformation exposing functionally relevant regions.
Sulfur-containing sites in proteins are of great importance for both protein structure and function, including enzymatic catalysis, signaling pathways, and recognition of ligands and protein partners. Selenium-77 is an NMR active spin-1/2 nucleus that shares many physiochemical properties with sulfur and can be readily introduced into proteins at sulfur sites without significant perturbations to the protein structure. The sulfur-containing amino acid methionine is commonly found at protein–protein or protein–ligand binding sites. Its selenium-containing counterpart, selenomethionine, has a broad chemical shift dispersion useful for NMR-based studies of complex systems. Methods such as (1H)-77Se-13C double cross polarization or {77Se}-13C REDOR could be valuable to map the local environment around selenium sites in proteins but have not been demonstrated to date. In this work, we explore these dipolar transfer mechanisms for structural characterization of the GB1 V39SeM variant of the model protein GB1 and demonstrate that 77Se-13C based correlations can be used to map the local environment around selenium sites in proteins. We have found that the general detection limit is ~ 5 Å, but longer range distances up to ~ 7 Å can be observed as well. This study establishes a framework for the future characterization of selenium sites at protein–protein or protein–ligand binding interfaces.
ADP ribosylation factor-1 (Arf1) is a major regulator of cell membrane trafficking and organelle structure, and Arf1 misregulation contributes to invasion and metastasis of cancer cells. The basis for Arf1 biological function is a highly regulated GDP/GTP cycle coupled to a cytosolic/membrane-bound cycle. Cell membranes play a crucial role for all steps of the Arf1 signaling cycle: 1) membranes are mandatory for Arf1 GTPase to acquire the active state; 2) Arf1 interacts with numerous proteins on the membrane surface.
Association of the ASAP1 Pleckstrin homology (PH) domain with multiple PI(4,5)P2 at the membrane surface participates to the regulation of the small GTPase Arf1 activity. However, the effect of local PI(4,5)P2 enrichment at the membrane is unclear beyond an increased affinity of ASAP1 PH for the membrane. In particular, how PI(4,5)P2 concentration affects the docking geometry of ASAP1 PH is unknown. To determine the orientation of ASAP1 PH at the membrane interface, we explored the use of pseudo distance constraints obtained from NMR Paramagnetic Relaxation Enhancement (PRE) experiments.
KRAS is the most frequently mutated RAS protein in cancer patients, and it is estimated that about 20% of the cancer patients in the United States carried mutant RAS proteins. To accelerate therapeutic development, structures and dynamics of RAS proteins had been extensively studied by various biophysical techniques for decades. Although 31P NMR studies revealed population equilibrium of the two major states in the active GMPPNP-bound form, more complex conformational dynamics in RAS proteins and oncogenic mutants subtly modulate the interactions with their downstream effectors. We established a set of customized NMR relaxation dispersion techniques to efficiently and systematically examine the ms-μs conformational dynamics of RAS proteins. This method allowed us to observe varying synchronized motions that connect the effector and allosteric lobes in KRAS. We demonstrated the role of conformational dynamics of KRAS in controlling its interaction with the Ras-binding domain of the downstream effector RAF1, the first kinase in the MAPK pathway. This allows one to explain, as well as to predict, the altered binding affinities of various KRAS mutants, which was neither previously reported nor apparent from the structural perspective.
ASAP1 is an Arf GTPase Activating Protein (ArfGAP) that participates in the regulation of actin-dependent membrane traffic and organelle structure by stimulating the activity of the small GTPase Arf1 at the membrane, thereby converting Arf1·GTP to Arf1·GDP. The core catalytic domain of ASAP1—referred to as ASAP1-PZA—is composed of a Pleckstrin homology (PH) domain ([325-451]—ASAP1, ∼14 kDa), immediately N-terminal to the catalytic Arf GAP domain ([458-724]—ASAP1 or ZA domain, ∼30 kDa); these two domains are connected by a short linker.
In a recent publication it was shown that homonuclear scalar couplings in directly detected protein NMR spectra can be"decoupled" using deep neural networks,including cases where existing methods fail [1].The work harkens back to the introduction of maximum entropy and non-uniform sampling,and it elegantly illustrates how new approaches can be devised in the conceptualization of NMR experiments,freeing researchers from conventional thinking and approaches.The work opens up a new era in biomolecular NMR spectroscopy,where experimental design is tailored towards processing with deep neural networks.().