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Photoaffinity labelling of the porcine thyrotropin receptor--effect of Graves' immunoglobulin G and anti-TSH anti-idiotypic antibodies.

Despite active investigations, the structure of the thyrotropin (TSH) receptor, its organization and its interaction with putative anti-receptor antibodies remains unknown. We have undertaken photoaffinity cross-linking of TSH-binding sites on porcine thyroid plasma membranes with 125I-bTSH and the photoactive heterobifunctional cross-linker, N-hydroxysuccinimidyl-4-azidobenzoate. In the presence of reductant a single Mr 58,600 band was labelled, whereas 3 distinct bands (Mr 192,400, 86,000 and 59,600) were visualized when photolysed samples were subjected to sodium dodecyl sulphate polyacrylamide gel electrophoresis under non-reducing conditions. The intensities of these labelled bands were quantitatively decreased with increasing concentrations of native bTSH, but not by large amounts of insulin or human chorionic gonadotropin. Graves' disease IgG and an anti-TSH anti-idiotype IgG, both of which are putative anti-receptor antibodies, caused different inhibition patterns on non-reduced gels: anti-TSH anti-idiotype predominantly inhibited the labelling of the Mr 192,400 band (probably the holoreceptor), whereas Graves' IgG also inhibited labelling of lower M.W. bands. Both antibodies had much less influence, of the Mr = 58,600 band resolved in the presence of reductant.

Affinity Labels↗

Localization by photoaffinity labeling of natriuretic peptide receptor-A binding domain.

A portion of the ligand binding domain for atrial natriuretic peptide (ANP) was identified as an affinity cross-linked proteolytic fragment of bovine adrenal natriuretic peptide receptor type-A (NPR-A). Affinity purified NPR-A was UV-cross-linked to the amino terminus of 125I-[Tyr2] rat ANP-(2-27). A chymotryptic fragment of the affinity labeled NPR-A was isolated by chromatography and electrophoresis. This fragment yielded a major microsequence corresponding to a region from Met173 to Phe188 of the receptor extracellular domain and containing one N-glycosylation site at Asn180. Bovine NPR-A receptor was then cross-linked to the carboxy terminus of the highly efficient photoaffinity derivative 125I-[Tyr18,Bpa27] rat ANP(1-27). Proteolysis of the affinity labeled NPR-A with cyanogen bromide and trypsin produced radiolabeled and glycosylated fragments of size 15 and 9 kDa, respectively, which contained the epitope Ile181-Phe188 (CS328) and which were detectable by immunoprecipitation with a monospecific polyclonal antibody against CS328. Proteolysis with cyanogen bromide followed by Glu-C produced a shorter photolabeled 6 kDa fragment which was not immunoprecipitable by anti-CS328 antibody and which was not glycosylated. The results lead to the identification of the short segment Asp191-Arg198 as the site of covalent binding of [Tyr18,Bpa27] rat ANP(1-27). This hydrophilic region is adjacent to the epitope Ile181-Phe188 and to the glycosylation site Asn180. It displays the species variability and the high surface probability expected for a portion of the binding domain of NPR-A in contact with ANP.

Affinity Labels↗

Atrial natriuretic factor receptor on cultured Leydig tumor cells: ligand binding and photoaffinity labeling.

Atrial natriuretic factor (ANF) is a peptide hormone discovered recently from the heart atrium that possesses potent natriuretic and vasorelaxant activities. Recently we found that ANF markedly stimulates intracellular cGMP and almost completely inhibits cAMP accumulation in testicular interstitial tumor cells [Pandey, K. N., Kovacs, W. J., & Inagami, T. (1985) Biochem. Biophys. Res. Commun. 133, 800-806]. These actions of ANF suggest the presence of ANF receptors in testicular interstitial cells. In this study, cultured murine Leydig tumor cells have been shown to contain specific binding sites for ANF. Saturation binding studies indicated a single class of binding sites with a Kd of 5 X 10(-9) M at a density of 2 X 10(6) sites/cell. The binding of mono[125I]iodo-ANF (125I-ANF) was competed by unlabeled ANF in a dose-dependent manner. Hormones unrelated to ANF such as angiotensin I, bovine luteinizing hormone, and human chorionic gonadotropin were not able to compete against 125I-ANF. The binding of 125I-ANF was rapid, reaching maximum levels in 15 min at 4 degrees C. At 37 degrees C, the cell-bound 125I label was quickly decreased. Pretreatment of cells with NH4Cl, chloroquine, or NaN3 resulted in significant increases in maximum levels of the cell-bound 125I radioactivity. A photoaffinity reagent for ANF receptor was prepared by reacting ANF with succinimido 4-azidobenzoate, and resultant 4-azidobenzoyl- (AZB-) ANF was purified by high-performance liquid chromatography (HPLC). AZB-ANF was radioiodinated by use of chloramine T and purified again by HPLC.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Differences in photoaffinity labeling of DA1 receptors in renal proximal tubules from normotensive rat and SHR.

Renal DA1 dopamine receptors in proximal tubule membranes of normotensive Wistar-Kyoto (WKY) and spontaneously hypertensive rats (SHR) were characterized with the novel D1 dopamine receptor-selective photoaffinity probe, (+/-)-7-[125I]iodo-8-hydroxy-3-methyl-1-(4-azidophenyl)-2,3,4,5- tetrahydro-1H-3-benzazepine ([125I]MAB). Under nonphotolyzing conditions, saturation studies showed that [125I]MAB bound with similar affinity to DA1 dopamine receptors in both WKY [dissociation constant (Kd) = 16.3 nM] and SHR (Kd = 19.5 nM). At photolysis, [125I]MAB was irreversibly incorporated into a single major protein of 74,000 Da in both WKY and SHR. DA1-selective antagonists blocked photolabeling of DA1 sites with similar efficiency and specificity in SHR and WKY. However, under identical assay conditions, dopaminergic agonists were unable to block photoincorporation of [125I]MAB in SHR but not in WKY. This pattern of labeling of DA1 sites by [125I]MAB may suggest the presence of defective agonist, but not antagonist, binding domains on the receptor in SHR but not in WKY rats.

Affinity Labels↗

Biochemistry of terminal deoxynucleotidyltransferase: characterization and properties of photoaffinity labeling with 8-azidoadenosine 5'-triphosphate.

We have found that 8-azidoadenosine 5'-triphosphate (8-azido-ATP) and its photolyzed product are competitive inhibitors of terminal deoxynucleotidyltransferase with respect to substrate deoxynucleoside triphosphates. A detailed characterization of the inhibitory effect of 8-azido-ATP revealed that its mechanism of inhibition is identical with that reported for ATP [Modak, M. J. (1978) Biochemistry 17, 3116-3120]. Photoactivation of the azido-ATP-enzyme complex results in the covalent binding of azido-ATP to terminal deoxynucleotidyltransferase. No significant incorporation of prephotolyzed azido-ATP or unsubstituted ATP into enzyme protein is noted when complexes of these nucleotides with enzyme were exposed to identical photoactivation conditions. The majority of incorporated analogue was associated with the 26 000-dalton subunit of terminal deoxynucleotidyltransferase. Incorporation of azido-ATP was further found to be absolutely dependent on the presence of a divalent cation. All four deoxyribonucleoside triphosphates as well as ATP and guanosine 5'-triphosphate were able to compete with azido-ATP during the incorporation experiment as judged by the competitive reduction in the cross-linking of the photoaffinity analogue to terminal deoxynucleotidyltransferase (TDT). In addition, substrate binding site directed inhibitors, pyrophosphate and pyridoxal 5'-phosphate, effectively blocked the incorporation of azido-ATP into enzyme protein, while several other inhibitors of TDT catalysis, namely, ethylenediaminetetraacetic acid, alpha, alpha'-dipyridyl, 1,10-phenanthroline, p-(chloromercuri)benzoate, Rose Bengal, and the presence of 0.5 M KCl, influenced the cross-linking reaction to varying degrees. A tryptic peptide analysis of the azido-ATP-labeled 26K subunit of TDT revealed that the majority of the incorporated photoaffinity analogue was present in two peptides.

Adenosine Triphosphate↗

Photoaffinity labeling of Arabidopsis thaliana plasma membrane vesicles by 5-azido-[7-3H]indole-3-acetic acid: identification of a glutathione S-transferase.

We used 5-azido-[7-3H]indole-3-acetic acid (5-azido-[7-3H]IAA), a photoaffinity analogue of the plant hormone indole-3-acetic acid (IAA), to search for auxin-binding proteins in Arabidopsis thaliana membranes. We identified an auxin-binding protein with a molecular mass of 24 kDa (Atpm24) in microsomes as well as in plasma membrane vesicles. Atpm24 was solubilized by 1% Triton X-100 and partially purified. A cDNA clone (Atpm24.1) corresponding to Atpm24 was isolated. The amino acid sequence predicted from the Atpm24.1 cDNA contains 212 amino acid residues with a relative molecular mass of 24,128 Da. Data base searches revealed that the predicted protein has homology to glutathione S-transferases (GSTs; EC 2.5.1.18). When Atpm24.1 was expressed in Escherichia coli, we found a high level of GST activity in the bacterial extracts. We have analyzed the substrate specificity of this protein and found that cumene hydroperoxide and trans-stilbene oxide but not trans-cinnamic acid or IAA-CoA were substrates. A role for this GST in physiological processes of plants is discussed.

Affinity Labels↗

Photoaffinity labelling of human leukotriene C4 synthase in THP-1 cell membranes.

Human leukotriene C4 synthase specific activity in the human monocytic leukemia cell line THP-1 (0.302 +/- 0.062 nmol LTC4 formed.min-1 x mg-1) was 7.6-fold higher than in U937 cells (0.040 +/- 0.017 nmol LTC4 formed.min-1 x mg-1) and comparable to dimethylsulfoxide-differentiated U937 cells (0.399 +/- 0.084 nmol LTC4 formed.min-1 x mg-1). Using the photoaffinity probe, azido[125I]-LTC4, a single polypeptide with a molecular mass of 18 kDa was specifically labelled in THP-1 microsomal membranes. The rank order of potencies for competition of azido[125I]-LTC4 photolabelling of the 18 kDa protein by glutathione, leukotrienes and their analogs was found to be LTC2 > (azido[127I]-LTC4 approximately LTC4) > (LTD4 approximately LTE4) > (LTA4 approximately LTB4) > S-hexyl glutathione > glutathione, corresponded with the rank order of potencies for inhibition of LTC4 synthase activity but not inhibition of microsomal glutathione S-transferase activity. The 18 kDa protein specifically labelled by azido[125I]-LTC4 had high specificity for LTC4 and closely related leukotrienes and was separable from microsomal glutathione S-transferase. We conclude that azido[125I]-LTC4 specifically photolabels LTC4 synthase which is an 18 kDa polypeptide or contains an 18 kDa subunit.

Affinity Labels↗

The AMP-binding domain on adenylate kinase. Evidence for a conformational change during binary-to-ternary complex formation via photoaffinity labeling analyses.

The topological location of the nucleotide substrate binding environments on adenylate kinase has been explored with the fluorescent molecule [4-benzoyl]benzoyl-1-amidofluorescein (BzAF) and the nucleotide analog 3'-O-[4-benzoyl]benzoyl-ATP (BzATP), which are site-directed photoaffinity probes that bind covalently at the individual nucleotide sites. The MgBzATP substituted for MgATP as a substrate for this enzyme, whereas BzAF, which is neither a substrate nor a nucleotide, behaved as a competitive inhibitor for each nucleotide site independently. BzAF could be directed specifically to either of the nucleotide sites by near saturation of the second site with its natural nucleotide substrate. Using this second site blocking approach, each nucleotide site, in turn, could be protected competitively from BzAF-induced photoinhibition by the presence of its natural substrate. This strategy showed that under photolysis, the Kd(BzAF) of 0.1 mM (for the MgATP site) and 0.2 mM (for the AMP site) were nearly identical with the Km(app) values determined for MgATP and AMP, respectively. Pseudo first-order photolysis kinetics with [3H]BzAF revealed covalent binding stoichiometries for full inhibition of 1 mol of probe/mol of enzyme at either site. Thus, we prepared the binary complex ([3H]BzAF-enzyme) by photo-labeling the MgATP site-blocked enzyme with [3H]BzAf to 1:1 molar stoichiometry. Tryptic digestion followed by partial sequencing of the [3H]BzAF-labeled enzyme disclosed that BzAF was bound specifically within the peptide span Gly64-->Arg77. This amino acid domain therefore probably constitutes the neighborhood identifiable with AMP binding. Furthermore, we also achieved double photocovalent labeling of adenylate kinase with both photoprobes, by first cross-linking with approximately 1 mol of MgBzATP, followed by approximately 0.9 mol of [3H]BzAF, thus generating a ternary covalent complex. Comparison of the fluorescence of the binary species and the ternary (BzATP-enzyme-[3H]BzAF) complex revealed altered fluorescence emission profiles, which could indicate that a conformational change occurs during formation of the ternary (or transition state) complex.

Adenosine Monophosphate↗

Photoaffinity labeling of a mitochondrial hydrophobic protein by an anisotropic inhibitor of energy transduction in oxidative phosphorylation.

The monoazide derivative of ethidium, the parent compound of which is an anisotropic inhibitor of energy transduction in oxidative phosphorylation, was synthesized and shown to be useful as a photoaffinity probe. Results showed that monoazide ethidium specifically binds to a hydrophobic protein of mitochondria (with an apparent molecular weight of about 6200 in the presence of 0.1% sodium dodecyl sulfate). The molar binding ratios of monoazide ethidium to protein were about 5 and 17 with protein in the nonenergized and energized states, respectively. This protein differed from the dicyclohexylcarbodiimide-binding protein. We refer to this new hydrophobic protein, anisotropic inhibitor-binding protein, in this paper.

Affinity Labels↗

In situ photoaffinity labeling of the target protein for lembehyne A, a neuronal differentiation inducer.

A C(36) linear acetylene alcohol, lembehyne A (LB-A), induces neuronal differentiation against neuroblastoma cells morphologically and also functionally. The differentiation and cytostatic effect induced by LB-A was specific to neuroblastoma, Neuro 2A cells. To identify the target protein for LB-A, a radioactive photoaffinity probe, [(125)I]18-(2'-azido-5'-iodo-benzoyloxy)-LB-18 ([(125)I]azido-LB-18), was synthesized. As a result of in situ labeling experiments against Neuro 2A cells, a protein of M(r) 30 kDa was photolabeled specifically. This labeling was inhibited in the presence of LB-A or the active analogs of LB-A, whereas the inactive analogs showed no inhibitory effect on this labeling. These results suggest that this protein of M(r) 30 kDa is the target protein for LB-A and may play an important role for the neuronal differentiation in neuroblastoma, Neuro 2A cells.

Alkynes↗

Photoaffinity labelling of methyltransferase enzymes with S-adenosylmethionine: effects of methyl acceptor substrates.

Radioactivity from 3H-[methyl]-S-adenosyl-L-methionine (AdoMet) was covalently bound to protein-O-carboxylmethyltransferase and phenylethanolamine N-methyltransferase following 10-15 min irradiation by short-wave ultraviolet light. This photoaffinity binding of 3H-[methyl]-AdoMet was blocked by S-adenosylhomocysteine and sinefungin, but was not affected by 5 mM dithiothreitol. The binding was also inhibited by including methyl acceptors such as calmodulin (protein-O-carboxylmethyltransferase) or phenylethanolamine (phenylethanolamine N-methyltransferase) in the photoaffinity incubation. Staphlococcus V8 protease digests of 3H-[methyl]-AdoMet/enzyme complexes revealed that the primary structure around the AdoMet binding site is different in these two enzymes. Thus, protein-O-carboxylmethyltransferase, a large molecule methyltransferase, can covalently bind 3H-[methyl]-AdoMet in a manner similar to that of phenylethanolamine-N-methyltransferase.

Affinity Labels↗

Characterization of an acetyl-11-keto-beta-boswellic acid and arachidonate-binding regulatory site of 5-lipoxygenase using photoaffinity labeling.

AKBA (acetyl-11-keto-beta-boswellic acid), a natural pentacyclic triterpene, is an orally active leukotriene-synthesis inhibitor, which acts by a 5-lipoxygenase-directed, non-redox, non-competitive mechanism. It is the only leukotriene-synthesis inhibitor so far identified that inhibits 5-lipoxygenase activity as an allosteric regulator and not by a reducing or competitive mechanism. To characterize AKBA's effector site we prepared azido125I-KBA (4-azido-5-125iodo-salicyloyl-beta-alanyl-11-keto-beta-bo swellic acid) as a photoaffinity analogue, which inhibited 5-lipoxygenase activity as efficiently as the lead compound and specifically labeled human 5-lipoxygenase protein. The labeling of 5-lipoxygenase by azido-125I-KBA strictly depended on the presence of calcium ([Ca2+]free > 500 nM) and was abolished by heat denaturation or by prior incubation with a series of pentacyclic triterpenes (e.g., amyrin, beta-boswellic acid, AKBA and 18a-glycyrrhetinic acid). In contrast, 18-beta-glycyrrhetinic acid and competitive 5-lipoxygenase inhibitors (e.g., ZM-230,487 and L-739,010) did not affect labeling. Arachidonic acid, in enzyme-activity-inhibiting concentrations, reduced photoincorporation (IC50 about 10 microM), whereas a variety of other long-chain fatty acids and their derivatives (e.g., arachidinic acid, arachidonic acid methyl ester, lipoxins A4 and B4) had no effect. The inhibitory arachidonate action on labeling was not affected by blocking the substrate-binding site by micromolar amounts of the competitive inhibitor L-739,010. Therefore, we suggest that AKBA binds in presence of calcium to a site which is distinct from the substrate binding site of 5-lipoxygenase. The AKBA-binding site is likely to be identical with a regulatory, second arachidonate binding site of the enzyme.

Affinity Labels↗

Identification of the calcitonin receptor by chemical cross-linking and photoaffinity labeling in human cancer cell lines.

Two methods have been used to covalently cross-link [125I]-salmon calcitonin to its receptor on a human lung carcinoma cell line, BEN, and the human breast cancer cell lines T47D and MCF 7. The first method was to use a specific photoaffinity derivative of salmon calcitonin and the second employed the chemical cross-linker, disuccinimidyl suberate. In both cases a cross-linked component of approximate molecular weight 80-90,000 on BEN cells was identified by polyacrylamide gel electrophoresis. This is consistent with the size of the cross-linked component found on T47D breast cancer cells using the photoactive salmon calcitonin as described in previous work. Disuccinimidyl suberate was unable to cross-link [125I]-salmon calcitonin either on T47D or MCF cells. However, photoactive salmon calcitonin cross-linked to a component of approximately 80-90,000 Mr on the MCF 7 cells. Thus, whereas the photoactive salmon calcitonin could cross-link a similar receptor component in all cell lines, the ability of disuccinimidyl suberate to do so was apparently cell specific. These data confirm that the calcitonin receptor comprises a component of approximately 85,000 Mr in cell lines examined thus far.

Affinity Labels↗

Photoaffinity labeling of rat steroid 5 alpha-reductase (isozyme-1) by a benzophenone derivative of a 4-methyl-4-azasteroid.

[1,2-3H]N-4(Benzylbenzoyl)-3-oxo-4-aza-4-methyl-5 alpha-androstane-17 beta-carboxamide ([3H]-4MABP) has been synthesized as a photoaffinity probe of the steroid-binding domain of rat steroid 5 alpha-reductase isozyme-1 (5 alpha R-1). Reversible binding of the probe to 5 alpha R-1 in microsomal preparations yielded a reversible dissociation constant (Kd) of -3 nM, whereas inhibition experiments indicated that the probe had a 50% inhibition concentration of 4.4 nM and was a competitive inhibitor of the enzyme (Ki approximately 3 nM) with respect to testosterone. SDS-PAGE analysis of microsomal, detergent-solubilized, and (6.5%) polyethylene glycol-precipitated fractions of 5 alpha R-I photolyzed with [3H]4MABP in the presence of NADPH showed that the radioactivity was incorporated into a single protein band with a mass of 26 kDa (apparent molecular weight of 5 alpha R-1). UV photolysis was accompanied by an irreversible loss in enzyme activity, consistent with its covalent modification. Increasing the time of UV irradiation and concentration of [3H]4MABP indicated that the half-life and apparent Kd for its photo insertion were approximately 3 min and 7.5 nM, respectively. Photolysis in the presence of a 20-fold excess of N,N-diethyl-4-aza-4-methyl-3-oxo-5 alpha-androstane-17 beta-carboxamide or the 3-carboxysteroid SKF-105111 resulted in partial protection of 5 alpha R-1 from the probe, whereas minimal incorporation of radioactivity was observed in the absence of NADPH or in the presence of NADP+. The results indicate that [3H]4MABP is an effective probe of the steroid (D-ring) binding domain of 5 alpha R-1.

3-Oxo-5-alpha-Steroid 4-Dehydrogenase↗

Photoaffinity labeling of the leukotriene D4 receptor in guinea pig lung.

The leukotriene (LT)D4 receptor has been defined as a G-protein-coupled receptor. In order to characterize this receptor, an iodinated, photoactivatable azido derivative of LTD4 (125I-azido-LTD4) has been synthesized for use as a photoaffinity probe. The characteristics of 125I-azido-LTD4 specific binding to guinea pig lung membranes were directly comparable to those of [3H]LTD4 specific binding to this tissue. 125I-Azido-LTD4 specific binding was saturable and of high affinity, enhanced by divalent cations and inhibited by sodium ions, but not potassium ions. 125I-Azido-LTD4 specific binding was also strongly inhibited by the nonhydrolyzable GTP analog, GTP gamma S, with ATP gamma S being 100-fold less potent, suggesting this inhibition was due to selective interaction with a G-protein. The cysteinyl leukotrienes competed for 125I-azido-LTD4 specific binding to guinea pig lung membranes with the following rank order of potency: LTD4 > LTE4 > LTC4, while the non-cysteinyl LTB4 was virtually inactive. Two structurally different LTD4 receptor antagonists, MK-571 and ICI 204,219, also competed for 125I-azido-LTD4 specific binding with nanomolar potency, whereas the leukotriene synthesis inhibitor, MK-886, was 10,000-fold less active. These data are in agreement with 125I-azido-LTD4 binding specifically to a G-protein-coupled LTD4 receptor. Photolysis of 125I-azido-LTD4 under equilibrium binding conditions resulted in the selective radiolabeling of a 45-kDa guinea pig lung membrane protein. The photolabeling of this 45-kDa protein was saturable, modulated by cations and inhibited by nucleotide analogs in an analogous way to 125I-azido-LTD4 specific binding. In addition, the photolabeling of this protein was inhibited in a concentration-dependent manner by all competing ligands, with the same rank order of potency and IC50 values as determined in the 125I-azido-LTD4 binding assay. It is proposed, therefore, that this novel 45-kDa protein is the guinea pig lung LTD4 receptor.

Affinity Labels↗

Photoaffinity labeling of T4 endonuclease V with a substrate containing a phenyldiazirine derivative.

T4 endonuclease V recognizes thymine photodimers in DNA duplexes and, in a two-step reaction, cleaves the glycosyl linkage of the 5'-side thymidine and the phosphodiester linkage. To determine the amino acid residues responsible for binding thymine photodimers, a photoaffinity reagent, 4-(1-azi-2,2,2-trifluoroethyl)-benzoate, was linked to the aminoalkylphosphonate of a thymine photodimer in a 14-mer duplex. The reactive substrate was treated with the enzyme under UV light (365 nm). The nascent enzyme and the modified enzyme were treated with lysyl endopeptidase, and the peptide maps were compared. Three peptides from the C terminus were found to interact with the reactive oligonucleotide to various extents. The three modified peptides were isolated and analyzed by Edman degradation. The amino acid residues Gly-133, Tyr-129, and Thr-89 were partially linked with the reactive substrate and may be involved in the binding of thymine photodimers.

Affinity Labels↗

Photoaffinity labeling of human placental NAD(+)-linked 15-hydroxyprostaglandin dehydrogenase with [alpha-32P]2N3NAD+. Identification of a peptide in the adenine ring binding domain.

Oxidation of many prostaglandins at C-15 results in the formation of 15-keto metabolites, which have reduced biological activity. This reaction is catalyzed by NAD(+)-dependent 15-hydroxyprostaglandin dehydrogenase. Using the photoaffinity analog of NAD+, [alpha-32P]nicotinamide-2-azidoadenine dinucleotide, we have identified a peptide in the adenine ring binding domain of the NAD+ binding site of 15-hydroxyprostaglandin dehydrogenase. The specificity of photolabeling was demonstrated by saturation and protection experiments. Saturation of photolabeling was observed at approximately 45-50 microM with an apparent Kd of 8-10 microM. Approximately 90% of photolabeling could be protected by 200 microM NAD+ when the protein was photolyzed in the presence of 10 microM probe. The photolabeled protein was digested with Staphylococcus aureus V8 or chymotrypsin, and the photolabeled peptides were purified by either boronate affinity chromatography or Fe+3 chelate chromatography followed by reverse phase HPLC. The photolabeled peptide region was identified to be Val32-Glu40.

Adenine↗