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1.
bioRxiv ; 2024 Feb 13.
Article in English | MEDLINE | ID: mdl-38370611

ABSTRACT

The PP2A-B55 phosphatase regulates a plethora of signaling pathways throughout eukaryotes. How PP2A-B55 selects its substrates presents a severe knowledge gap. By integrating AlphaFold modelling with comprehensive high resolution mutational scanning, we show that α-helices in substrates bind B55 through an evolutionary conserved mechanism. Despite a large diversity in sequence and composition, these α-helices share key amino acid determinants that engage discrete hydrophobic and electrostatic patches. Using deep learning protein design, we generate a specific and potent competitive peptide inhibitor of PP2A-B55 substrate interactions. With this inhibitor, we uncover that PP2A-B55 regulates the nuclear exosome targeting complex by binding to an α-helical recruitment module in RBM7. Collectively, our findings provide a framework for the understanding and interrogation of PP2A-B55 in health and disease.

2.
ACS Pharmacol Transl Sci ; 6(10): 1492-1507, 2023 Oct 13.
Article in English | MEDLINE | ID: mdl-37854625

ABSTRACT

Quality of life is often reduced in patients with sleep-wake disorders. Insomnia is commonly treated with benzodiazepines, despite their well-known side effects. Pellotine (1), a Lophophora alkaloid, has been reported to have short-acting sleep-inducing properties in humans. In this study, we set out to evaluate various in vitro and in vivo properties of 1. We demonstrate that 1 undergoes slow metabolism; e.g. in mouse liver microsomes 65% remained, and in human liver microsomes virtually no metabolism was observed after 4 h. In mouse liver microsomes, two phase I metabolites were identified: 7-desmethylpellotine and pellotine-N-oxide. In mice, the two diastereomers of pellotine-O-glucuronide were additionally identified as phase II metabolites. Furthermore, we demonstrated by DESI-MSI that 1 readily enters the central nervous system of rodents. Furthermore, radioligand-displacement assays showed that 1 is selective for the serotonergic system and in particular the serotonin (5-HT)1D, 5-HT6, and 5-HT7 receptors, where it binds with affinities in the nanomolar range (117, 170, and 394 nM, respectively). Additionally, 1 was functionally characterized at 5-HT6 and 5-HT7, where it was found to be an agonist at the former (EC50 = 94 nM, Emax = 32%) and an inverse agonist at the latter (EC50 = 291 nM, Emax = -98.6). Finally, we demonstrated that 1 dose-dependently decreases locomotion in mice, inhibits REM sleep, and promotes sleep fragmentation. Thus, we suggest that pellotine itself, and not an active metabolite, is responsible for the hypnotic effects and that these effects are possibly mediated through modulation of serotonergic receptors.

3.
J Palliat Med ; 25(7): 1127-1131, 2022 07.
Article in English | MEDLINE | ID: mdl-35333615

ABSTRACT

Objectives: To compare outcomes of PleurX and peritoneal port for malignant ascites. Design: Retrospective review of medical records was conducted. Setting/Subjects: Subjects were consecutive patients receiving PleurX or peritoneal port for malignant ascites in a center in Sydney, Australia. Measurements: Demographic data, complication rates, hospitalization rates, and survival were measured. Results: Sixteen cases were analyzed: 6 had peritoneal port (170 catheter days) and 10 had PleurX (477 catheter days). Complication rates were low with both drainage systems. Cellulitis rate was 33% (1.2 events/100 catheter days) for peritoneal port and 10% (0.2 events/100 catheter days) for PleurX. Hospital admission days were 27 days/100 catheter days for peritoneal port and 5.2 days/100 catheter days for PleurX. Conclusions: Both PleurX and peritoneal port seem feasible options in draining malignant ascites. Further research is needed to ascertain whether there are true differences in cellulitis/admission rates. Patient quality of life, experience, and preference should be included in future studies.


Subject(s)
Ascites , Peritoneal Neoplasms , Ascites/etiology , Ascites/therapy , Catheters, Indwelling/adverse effects , Cellulitis/complications , Humans , Peritoneal Neoplasms/complications , Quality of Life , Retrospective Studies
4.
J Nat Prod ; 84(8): 2398-2407, 2021 08 27.
Article in English | MEDLINE | ID: mdl-34264089

ABSTRACT

Commonly, false peyote refers to Lophophora diffusa. However, several other unrelated cacti go by this colloquial name. They either resemble "true" peyote, Lophophora williamsii, or are found in similar habitats. To date, over 40 different alkaloids have been isolated from the Lophophora genus. Of these, only the pharmacological actions of mescaline (1) have been extensively investigated. The major alkaloid in L. diffusa is pellotine (2), a tetrahydroisoquinoline (THIQ), which was briefly marketed as a sleeping aid around the beginning of the 20th century, following reports of its hypnotic properties in humans. Pharmacological experiments with the Lophophora THIQs were performed at the turn of the 20th century, whereas the chemical synthesis was not realized until several decades later. The biosynthetic pathways of the main Lophophora alkaloids were reported at the end of the 1960s. In this review, the relationship of the different "false peyotes" to L. williamsii, in regard to their alkaloid content, the bio- and chemical synthesis of the most relevant alkaloids, and their corresponding pharmacology will be outlined and discussed.


Subject(s)
Cactaceae/chemistry , Mescaline/chemistry , Alkaloids/chemistry , Alkaloids/pharmacology , Animals , Biosynthetic Pathways , Cactaceae/classification , Hallucinogens , Humans , Mescaline/pharmacology , Molecular Structure , Sleep Aids, Pharmaceutical
5.
Biochemistry ; 47(12): 3842-54, 2008 Mar 25.
Article in English | MEDLINE | ID: mdl-18303855

ABSTRACT

Orotidine 5'-monophosphate (OMP) decarboxylase from Plasmodium falciparum (PfODCase, EC 4.1.1.23) has been overexpressed, purified, subjected to kinetic and biochemical analysis, and crystallized. The native enzyme is a homodimer with a subunit molecular mass of 38 kDa. The saturation curve for OMP as a substrate conformed to Michaelis-Menten kinetics with K m = 350 +/- 60 nM and V max = 2.70 +/- 0.10 micromol/min/mg protein. Inhibition patterns for nucleoside 5'-monophosphate analogues were linear competitive with respect to OMP with a decreasing potency of inhibition of PfODCase in the order: pyrazofurin 5'-monophosphate ( K i = 3.6 +/- 0.7 nM) > xanthosine 5'-monophosphate (XMP, K i = 4.4 +/- 0.7 nM) > 6-azauridine 5'-monophosphate (AzaUMP, K i = 12 +/- 3 nM) > allopurinol-3-riboside 5'-monophosphate ( K i = 240 +/- 20 nM). XMP is an approximately 150-fold more potent inhibitor of PfODCase compared with the human enzyme. The structure of PfODCase was solved in the absence of ligand and displays a classic TIM-barrel fold characteristic of the enzyme. Both the phosphate-binding loop and the betaalpha5-loop have conformational flexibility, which may be associated with substrate capture and product release along the reaction pathway.


Subject(s)
Orotidine-5'-Phosphate Decarboxylase/antagonists & inhibitors , Orotidine-5'-Phosphate Decarboxylase/chemistry , Animals , Binding Sites , Crystallization , Crystallography, X-Ray , Dimerization , Escherichia coli/metabolism , Humans , Kinetics , Models, Molecular , Molecular Weight , Plasmodium falciparum/enzymology , Recombinant Proteins/antagonists & inhibitors , Recombinant Proteins/chemistry , Ribonucleotides/pharmacology , Species Specificity , Uridine Monophosphate/analogs & derivatives , Uridine Monophosphate/pharmacology
6.
J Mol Biol ; 370(5): 812-25, 2007 Jul 27.
Article in English | MEDLINE | ID: mdl-17550785

ABSTRACT

Dihydroorotase (DHOase) catalyzes the reversible cyclization of N-carbamyl-L-aspartate (CA-asp) to L-dihydroorotate (DHO) in the de novo biosynthesis of pyrimidine nucleotides. DHOase is a potential anti-malarial drug target as malarial parasites can only synthesize pyrimidines via the de novo pathway and do not possess a salvage pathway. Here we report the structures of Escherichia coli DHOase crystallized without ligand (1.7 A resolution) and in the presence of the inhibitors 2-oxo-1,2,3,6-tetrahydropyrimidine-4,6-dicarboxylate (HDDP; 2.0 A) and 5-fluoroorotate (FOA, 2.2 A). These are the first crystal structures of DHOase-inhibitor complexes, providing structural information on the mode of inhibitor binding. HDDP possesses features of both the substrate and product, and ligates the Zn atoms in the active site. In addition, HDDP forms hydrogen bonds to the flexible loop (residues 105-115) stabilizing the "loop-in" conformation of the flexible loop normally associated with the presence of CA-asp in the active site. By contrast, FOA, a product-like inhibitor, binds to the active site in a similar fashion to DHO but does not ligate the Zn atoms directly nor stabilize the loop-in conformation. These structures define the necessary features for the future design of improved inhibitors of DHOase.


Subject(s)
Dihydroorotase/antagonists & inhibitors , Dihydroorotase/chemistry , Escherichia coli Proteins/chemistry , Models, Molecular , Zinc/metabolism , Amino Acid Sequence , Binding Sites , Catalytic Domain , Dihydroorotase/metabolism , Escherichia coli Proteins/metabolism , Hydrogen Bonding , Ligands , Molecular Sequence Data , Movement , Orotic Acid/analogs & derivatives , Orotic Acid/chemistry , Protein Conformation
7.
Biochemistry ; 45(23): 7132-9, 2006 Jun 13.
Article in English | MEDLINE | ID: mdl-16752903

ABSTRACT

In the pyrimidine biosynthetic pathway, N-carbamyl-L-aspartate (CA-asp) is converted to L-dihydroorotate (DHO) by dihydroorotase (DHOase). The mechanism of this important reaction was probed using primary and secondary 15N and 13C isotope effects on the ring opening of DHO using isotope ratio mass spectrometry (IRMS). The reaction was performed at three different temperatures (25, 37, and 45 degrees C for hamster DHOase; 37, 50, and 60 degrees C for Bacillus caldolyticus), and the product CA-asp was purified for analysis. The primary and secondary kinetic isotope effects for the ring opening of the DHO were determined from analysis of the N and C of the carbamyl group after hydrolysis. In addition, the beta-carboxyl of the residual aspartate was liberated enzymatically by transamination to oxaloacetate with aspartate aminotransferase and then decarboxylation with oxaloacetate decarboxylase. The 13C/12C ratio from the released CO2 was determined by IRMS, yielding a second primary isotope effect. The primary and secondary isotope effects for the reaction catalyzed by DHOase showed little variation between enzymes or temperatures, the primary 13C and 15N isotope effects being approximately 1% on average, while the secondary 13C isotope effect is negligible or very slightly normal (>1.0000). These data indicate that the chemistry is at least partially rate-limiting while the secondary isotope effects suggest that the transition state may have lost some bending and torsional modes leading to a slight lessening of bond stiffness at the carbonyl carbon of the amide of CA-asp. The equilibrium isotope effects for DHO --> CA-asp have also been measured (secondary 13K(eq) = 1.0028 +/- 0.0002, primary 13K(eq) = 1.0053 +/- 0.0003, primary 15K(eq) = 1.0027 +/- 0.0003). Using these equilibrium isotope effects, the kinetic isotope effects for the physiological reaction (CA-asp --> DHO) have been calculated. These values indicate that the carbon of the amide group is more stiffly bonded in DHO while the slightly lesser, but still normal, values of the primary kinetic isotope effect show that the chemistry remains at least partially rate-limiting for the physiological reaction. It appears that the ring opening and closing is the slow step of the reaction.


Subject(s)
Aspartic Acid/analogs & derivatives , Orotic Acid/analogs & derivatives , Animals , Aspartic Acid/chemistry , Base Sequence , Carbon Isotopes/chemistry , Cricetinae , DNA Primers , Kinetics , Mass Spectrometry , Nitrogen Isotopes/chemistry , Orotic Acid/chemistry
8.
J Mol Biol ; 348(3): 523-33, 2005 May 06.
Article in English | MEDLINE | ID: mdl-15826651

ABSTRACT

Escherichia coli dihydroorotase has been crystallized in the presence of the product, L-dihydroorotate (L-DHO), and the structure refined at 1.9A resolution. The structure confirms that previously reported (PDB entry 1J79), crystallized in the presence of the substrate N-carbamyl-D,L-aspartate (D, L-CA-asp), which had a dimer in the asymmetric unit, with one subunit having the substrate, L-CA-asp bound at the active site and the other having L-DHO. Importantly, no explanation for the unusual structure was given. Our results now show that a loop comprised of residues 105-115 has different conformations in the two subunits. In the case of the L-CA-asp-bound subunit, this loop reaches in toward the active site and makes hydrogen-bonding contact with the bound substrate molecule. For the L-DHO-bound subunit, the loop faces in the opposite direction and forms part of the surface of the protein. Analysis of the kinetics for conversion of L-DHO to L-CA-asp at low concentrations of L-DHO shows positive cooperativity with a Hill coefficient n=1.57(+/-0.13). Communication between subunits in the dimer may occur via cooperative conformational changes of the side-chains of a tripeptide from each subunit: Arg256-His257-Arg258, near the subunit interface.


Subject(s)
Dihydroorotase , Escherichia coli Proteins , Orotic Acid/analogs & derivatives , Protein Structure, Quaternary , Protein Subunits , Amino Acid Sequence , Animals , Binding Sites , Crystallography, X-Ray , Dihydroorotase/chemistry , Dihydroorotase/metabolism , Escherichia coli Proteins/chemistry , Escherichia coli Proteins/metabolism , Humans , Models, Molecular , Molecular Sequence Data , Molecular Structure , Orotic Acid/metabolism , Protein Binding , Protein Structure, Tertiary , Protein Subunits/chemistry , Protein Subunits/metabolism , Sequence Alignment
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