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Pioneer in Molecular Biology: Conformational Ensembles in Molecular Recognition, Allostery, and Cell Function.

In 1978, for my PhD, I developed the efficient O(n3) dynamic programming algorithm for the-then open problem of RNA secondary structure prediction. This algorithm, now dubbed the "Nussinov algorithm", "Nussinov plots", and "Nussinov diagrams", is still taught across Europe and the U.S. As sequences started coming out in the 1980s, I started seeking genome-encoded functional signals, later becoming a bioinformatics trend. In the early 1990s I transited to proteins, co-developing a powerful computer vision-based docking algorithm. In the late 1990s, I proposed the foundational role of conformational ensembles in molecular recognition and allostery. At the time, conformational ensembles and free energy landscapes were viewed as physical properties of proteins but were not associated with function. The classical view of molecular recognition and binding was based on only two conformations captured by crystallography: open and closed. I proposed that all conformational states preexist. Proteins always have not one folded form-nor two-but many folded forms. Thus, rather than inducing fit, binding can work by shifting the ensembles between states, and this shifting, or redistributing the ensembles to maintain equilibrium, is the origin of the allosteric effect and protein, thus cell, function. This transformative paradigm impacted community views in allosteric drug design, catalysis, and regulation. Dynamic conformational ensemble shifts are now acknowledged as the origin of recognition, allostery, and signaling, underscoring that conformational ensembles-not proteins-are the workhorses of the cell, pioneering the fundamental idea that dynamic ensembles are the driving force behind cellular processes. Nussinov was recognized as pioneer in molecular biology by JMB.

Molecular Biology

Co-binding studies on Hb M Iwate. Allostery of a T state haemoglobin.

The mutant haemoglobin Hb M Iwate alpha 2Mmet87His leads to Tyr beta 2, is characterized by a stable T structure and a low ligand affinity. Sigmoidal CO-binding isotherms of symmetrical shape with Hill coefficients of n = 1.4 at pH 6 to n = 1.9 at pH 10 and the differences in the mean affinity (PCO(1/2)) and the affinity of the first ligand-binding beta subunit (1/L1 greater than Pco(1/2)) are the evidence for the cooperativity. The comparison of the Bohr effects of the two valency hybrid states (alpha 2Mmet beta met beta deoxy alpha 2Mmet beta 2deoxy) in the absence of and in the presence of polyphosphates leads to an indirect proof of pH-dependent subunit-subunit interaction. Inositol hexaphosphate-binding suppresses cooperativity in the pH range 5.5-8 (n = 1). Above pH 8 hte cooperativity increases to a final value of n = 1.9 at pH greater than 10, which is identical to that of stripped Hb M Iwate. The CO binding to the first binding site exhibits a Bohr effect. Polyphosphate anions have no influence on the CO binding of the first binding site. The heterotropic effects are discussed as intrachain effects (Bohr effect of the first binding site) and interchain effects (Bohr effect of Pco(1/2); influence of polyphosphates).

Allosteric Regulation

Why are enzymes macromolecules?

The possible reasons for the macromolecular nature of enzymes are discussed. They are recognized in the necessity of creating a highly specific stereochemistry and microenvironment in the active site, in the necessity of maintaining the protein conformational rigidity, its fit with the physiological environment and overall stability, in allostery, and in the possible existence of fossil sequences, molecular tinkering, and specific hydrodynamic properties.

Allosteric Regulation

Hexokinase III from Rana catesbeiana.

1. Hexokinase III was partially purified from the liver of the American bullfrong, Rana catesbeiana, using DEAE-cellulose column chromatography. 2. It was inhibited by glucose concentrations above 5 x 10(-5) M (pH 5.9), 10(-4) M (pH 6.7) or 10(-3) M (pH 7.5). 3. There was virtually no inhibition by excess glucose at pH 8.7. 4. The maximum velocity of the reaction increased with increasing pH. 5. Galactose could not be utilized as a substrate. 6. Classical Michaelis-Menten kinetics were obtained with respect to ATP, with no evidence of allostery. 7. The apparent Michaelis constant for ATP was 0.23 +/- 0.013 mM in the presence of 0.2 mM glucose at pH 7.5.

Animals

Regulating IL-2 Immune Signaling Function Via A Core Allosteric Structural Network.

Human interleukin-2 (IL-2) is a crucial cytokine for T cell regulation, with therapeutic potential in cancer and autoimmune diseases. However, IL-2's pleiotropic effects across different immune cell types often lead to toxicity and limited efficacy. Previous efforts to enhance IL-2's therapeutic profile have focused on modifying its receptor binding sites. Yet, the underlying dynamics and intramolecular networks contributing to IL-2 receptor recognition remain unexplored. This study presents a detailed characterization of IL-2 dynamics compared to two engineered IL-2 mutants, "superkines" S15 and S1, which exhibit biased signaling towards effector T cells. Using NMR spectroscopy and molecular dynamics simulations, we demonstrate significant variations in core dynamic pathways and conformational exchange rates across these three IL-2 variants. We identify distinct allosteric networks and minor state conformations in the superkines, despite their structural similarity to wild-type IL-2. Furthermore, we rationally design a mutation (L56A) in the S1 superkine's core network, which partially reverts its dynamics, receptor binding affinity, and T cell signaling behavior towards that of wild-type IL-2. Our results reveal that IL-2 superkine core dynamics play a critical role in their enhanced receptor binding and function, suggesting that modulating IL-2 dynamics and core allostery represents an untapped approach for designing immunotherapies with improved immune cell selectivity profiles.

Interleukin-2

Conformation and cooperativity in hemoglobin.

19-F and 31-P nuclear magnetic resonance (NMR) spectroscopy have been used to study the ligand binding process in human hemoglobin. 19-F nuclear magnetic resonance studies of hemoglobin specifically trifluoroacetonylated at cysteine-beta93 have permitted observation and characterization of molecular species containing two and three ligands. The behavior of these intermediate species in response to changes in pH and organic phosphate concentration is not completely consistent with any of the current theories of allostery. A model consistent with the 19-F and 31-P NMR data is proposed.

Allosteric Regulation

Design and optimization of a kinase-controlled allosteric switch.

Post-translational control enables rapid and precise regulation of cell behavior. Despite these advantages, general strategies to build phosphorylation-based synthetic circuits are limited. Here we reasoned that engineered allostery, a technique that has been applied to design light- and chemically gated protein switches, could also be used to engineer phosphorylation-controlled protein switches (phospho-switches). Using an allosterically controllable Gal4 transcription factor as a scaffold, we show that a classic kinase Förster resonance energy transfer biosensor architecture can be used as a starting point for phospho-switch design. We optimize all features of the phospho-switch to develop an ERK-controlled transcription factor with a 20-fold phosphorylation-dependent change in transcriptional output. The resulting synthetic ERK-responsive transcription factor responds with comparable sensitivity to the c-fos promoter and reveals spatial ERK signaling patterns in mammalian developmental organoids. We further show that our switch architecture can be generalized to other input kinases and allosterically controlled targets. This work provides a general platform for a new generation of kinase-responsive tools for biosensing and synthetic biology applications.

Allosteric Regulation

Co-operative binding of oxytocin to bovine neurophysin II.

The interaction of oxytocin with bovine neurophysin II in 0.1 M-sodium phosphate, pH 5.8, was investigated by equilibrium-dialysis and sedimentation studies. Sigmoidality of the binding curve is attributed to isomerization, either hormone-induced or pre-existing, with preferential binding of oxytocin to one isomeric state. Results are consistent with a binding equation of the form r = (2P[S]+2PQ[S]2)/(1+2P[S]+PQ[S]2) and values of 0.7 X 10(5)M-1 and 1.3 X 10(5)M-1 for P and Q respectively. The significance of these two parameters in relation to current theories of allostery is also discussed.

Animals

Temperature-induced interconversion of alpha-and beta-adrenoceptors in the frog heart.

1. The effect of ambient temperature on the properties of adrenoceptors mediating inotropic responses was assessed in isolated frog hearts on the basis of the effects and tissue uptake of alpha- and beta-adrenoceptor antagonists. 2. At temperatures of 23degree C and above inotropic responses to adrenaline were antagonized by propranolol (0-4-4-0muM), but were unaffected by phentolamine (26-5muM) and were potentiated by phenoxybenzamine (POB) (0-7-29-5muM). Below 17degree C the activity of propranolol was reduced at least tenfold, and the alpha-adrenoceptor antagonists inhibited responses to both adrenaline and isoprenaline, but not those to CaCL2. 3. The responses of hearts exposed to POB at 14degree C and then tested, after thorough washing, at both 14 and 24degree C were similarly inhibited at both temperatures, i.e. the usual beta-adrenoceptor response did not appear at the higher temperature. Conversely, exposure to POB at 24degree C produced only potentiation at both test temperatures. 4. Parallel to the reciprocal changes in their blocking actions, significantly more (14C)propranolol was retained by hearts exposed at high temperatures and significantly more (3H)POB was bound to the myocardium at low temperatures. Changes in binding and in the pharmaco logical effects of both blocking agents occurred entirely within a relatively narrow temperature range (17-22degree C) Parallel to the change from alpha- to beta-adrenoceptor characteristics with increasing temperature, the sensitivity of the hearts to adrenaline increased about tenfold. 5. Phentolamine (26-5muM) effectively protected hearts from block by (3H)POB at 14degree C, unmasked a potentiation of responses to adrenaline equivalent to that produced by POB at 24degree C, and reduced binding of the label to approximately the level found in unprotected hearts exposed at the higher temperature. At 24degree C, phentolamine did not alter the potentiation produced by (3H)POB, and reduced binding only slightly. There was no significant temperature differential in the amount of (3H)POB bound in the presence of phentolamine. 6. The results presented indicate a close functional and, probably, morphological association of alpha- and beta-adrenoceptors in the frog heart. It is suggested that the two classes of adrenoceptors may represent allosterie conformations of the same structure.

Animals

Dynamic Protein Structure Paradox: An Integrative Framework for Endpoint-Conditioned Evidentiary Sufficiency in Structure-to-Function Claims.

Accurate coordinates for a represented protein state do not, by themselves, establish activity or any other condition-specific function. This article defines the Dynamic Protein Structure Paradox (DPSP) as the apparent conflict between structural accuracy and functional underdetermination and develops it as an integrative evidentiary assessment framework rather than a new theory or paradigm. The underlying problem has been longstanding, since structural genomics, function annotation, allostery, and disorder research each established that fold does not determine function and that function does not determine fold. DPSP consolidates those results into one endpoint-conditioned rule. Once a measurable endpoint is defined, it assesses four coupled dimensions: relevant-state completeness, context completeness, ensemble or kinetic dependence, and chemical dependence. A rubric rates each dimension as adequate, uncertain, or missing, and a materiality test determines which gaps influence the stated decision. The outcome is one of three mutually exclusive modes of utilization: geometry-led, conditional, or function-measured. The deliverable is a concise evidence statement delineating what the structure supports, which decisive variable remains unmeasured, and what corroboration is necessary. DPSP complements, rather than replaces, existing structural, ensemble, and computational approaches. The framework remains unvalidated, its thresholds are provisional, and the studies necessary to confirm or refute it are specified.

Proteins

Investigation into pyruvate kinases from Escherichia coli K-12 grown under aerobic and anaerobic conditions.

Two forms of anaerobic Escherichia coli K-12 pyruvate kinase (EC 2.7.1.40) were separated by ammonium sulphate fractionations. Pyruvate kinases I is allosteric and pyruvate kinase II is non-allosteric to phosphoenolpyruvate. The addition of 1 mM FDP reversed the allostery to normal Michaelis-Menten kinetics. AMP had no effect, whereas 8 mM ATP completely inhibited the enzyme. The enzyme showed normal kinetics with ADP as substrate. Mg2+ and Mn2+ stimulated whereas Cu2+ severely inhibited the enzyme, which could be reversed by the addition of 1 mM FDP. Citrate, alpha-ketoglutarate, succinate, fumarate and alanine inhibited the enzyme, whereas phenylalanine had no effect. The allosteric pyruvate kinase from aerobic cultures was not only activated by FDP, but also by AMP. FDP changed Km and Vmax, whereas AMP influenced only the Km. During aerobic-anaerobic transition, pyruvate kinase synthesis increases and reaches a maximum under anaerobic conditions. The degree of FDP activation remains constant, but AMP activation is lost during transition. Aerobic cultures of E. coli K-12 grown on gluconeogenic substrates exhibited pyruvate kinase II activity (non-allosteric), which was stimulated by FDP and by AMP. It has been suggested that E. coli may have two types of pyruvate kinase II depending on the substrate and two types of pyruvate kinase I depending on oxygen tension in the medium.

Adenine Nucleotides