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Biomedical subjects

Masood Parvez

Publications and source records attributed to Masood Parvez.

At least 73 records · Page 4Linked to original sources

Intra- and intermolecular second-sphere coordination chemistry: formation of capsules, half-capsules, and extended structures with hexaaquo- and hexaamminemetal ions.

In the design of novel extended solids, particularly those based on weaker interactions, reliable "synthons" are a valuable commodity. This work concerns the hydrogen-bonded assemblies which result from the second-sphere coordination interactions between a highly preorganized trisulfonate ligand and hexaaquo metal ions. Significantly, supramolecular structural variation, which may be rationalized on the basis of the features of the molecular building blocks, is observed. The results are formation of second-sphere capsules with trivalent ions (Fe(3+), Cr(3+), Al(3+)), and half-capsules with divalent ions (Mg(2+), Zn(2+)). The divalent systems further assemble into extensively hydrogen-bonded hexagonal nets. Effects of geometrical variation of the building blocks are also observed when a Jahn-Teller-distorted divalent ion (Cu(2+)) is substituted for the perfectly octahedral species. The second-sphere effects on the stabilization of the primary coordination sphere are illustrated by TGA experiments. In these assemblies, the potential of a new supramolecular synthon is illustrated, that being the complementary cis-aquo sulfonate interaction. These complexes illustrate the general utility of second-sphere effects, both as an assembly tool and to stabilize metal complexes in the solid state. Finally, as a comparison, a hydrogen-bonded assembly with a hexaammine complex of a trivalent metal (Co(3+)) is presented, which forms an extended network with a completely altered hydrogen bonding array.

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Synthesis and X-ray structures of dilithium complexes of the phosphonate anions [PhP(E)(N(t)Bu)(2)](2-) (E = O, S, Se, Te) and dimethylaluminum derivatives of [PhP(E)(N(t)Bu)(NH(t)Bu)](-) (E = S, Se).

The dilithium salts of the phosphonate dianions [PhP(E)(N(t)Bu)(2)](2-) (E = O, S, Se) are generated by the lithiation of [PhP(E)(NH(t)Bu)(2)] with n-butyllithium. The formation of the corresponding telluride (E = Te) is achieved by oxidation of [Li(2)[PhP(N(t)Bu)(2)]] with tellurium. X-ray structural determinations revealed dimeric structures [Li(THF)(2)[PhP(E)(N(t)Bu)(2)]](2) in which the monomeric units are linked by Li-E bonds. In the case of E = Se or Te, but not for E = S, transannular Li-E interactions are also observed, resulting in a six-rung ladder. By contrast, for E = O, this synthetic approach yields the Li(2)O-templated tetramer [(THF)Li(2)[PhP(O)(N(t)Bu)(2)]](4).Li(2)O in THF or the tetramer [(Et(2)O)(0.5)Li(2)[PhP(O)(N(t)Bu)(2)]](4) in diethyl ether. The reaction of trimethylaluminum with PhP(E)(NH(t)Bu)(2) produces the complexes Me(2)Al[PhP(E)(N(t)Bu)(NH(t)Bu)] (E = S, Se), which were shown by X-ray crystallography to be N,E-chelated monomers.

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Modeling of prebiotic catalysis with adenylated polymeric templates: crystal structure studies and kinetic characterization of template-assisted phosphate ester hydrolysis.

We have synthesized and characterized novel, copper-metalated, polymeric templates that contain adenine nucleobases. These promote hydrolysis of non-natural and natural phosphate ester substrates in a highly efficient and catalytic fashion. The crystal structure of the cooper-containing adenylated monomer reveals the formation of a polymeric array, through coordination to both N1 and N7 atoms. Possible implications of these studies for prebiotic catalysis, involving synergism between adenine and copper ions, are also discussed.

Adenine↗

Derivatives of substituted 3-trichlorogermylpropionic acid.

The central Ge atoms in the structures of 3-(2-fluorophenyl)-3-(triphenylgermyl)propionic acid, [Ge(C(6)H(5))(3)(C(9)H(8)FO(2))], 3-(2-tolyl)-3-(tri-4-tolylgermyl)propionic acid, [Ge(C(7)H(7))(3)(C(10)H(11)O(2))], and 3-(4-tolyl)-3-(tribenzylgermyl)propionic acid, [Ge(C(7)H(7))(3)(C(10)H(11)O(2))], are four-coordinate with slightly distorted tetrahedral geometry. The Ge-Csp(3) distances [1.970 (3)-1.997 (3) A] are significantly longer than the Ge-C(aromatic) distances [1.940 (3)-1.959 (2) A]. In all three structures, the molecules form dimeric pairs about inversion centres through strong hydrogen-bonding interactions between carboxylic acid groups.

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Syntheses and structures of an unsolvated tetrakisimidophosphate (Li3(P(NBut)3(NSiMe3))2 and the face-sharing double-cubane (Li2(THF)[P(O)(NBut)2(NHBut)])2.

The treatment of Me3SiN=P(NHBut)3 with three equivalents of LiBun in toluene produces (Li3(P(NBut)3(NSiMe3)))2 comprised of a Li6N6 cyclic ladder capped on the two hexagonal faces by mu 3-PNSiMe3 groups; the corresponding reaction of O=P(NHBut)3 yields the face-sharing double-cubane (Li2(THF)P(O)(NBut)2(NHBut))2 with a central Li2O2 ring.

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4-Vinylbenzyl analogs of adenine and uracil: reactive monomers for nucleobase polymeric resins.

The crystal structures of 9-(4-vinylbenzyl)adenine, C(14)H(13)N(5), and 1-(4-vinylbenzyl)uracil, C(13)H(12)N(2)O(2), are composed of zigzag ribbon-like structures that are stabilized by conventional (N[bond]H...N-type) hydrogen bonds for the former and conventional (N[bond]H...O-type) and non-conventional (C[bond]H...O-type) hydrogen bonds for the latter; the hydrogen-bonding patterns are represented by graph-sets R(2)(2)(9) and R(2)(2)(8), respectively. The adenine and uracil moieties in these alkylated derivatives are planar and are inclined at angles of 84.44 (4) and 79.07 (7) degrees, respectively, with respect to the phenyl rings.

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catena-Poly[[tri-n-butyltin]-mu-N-(1-naphthyl)maleamato].

The crystal structure of catena-poly[[tri-n-butyltin]-mu-3-(1-naphthylaminocarbonyl)acrylato-kappa(2)O(1):O(3)], [Sn(C(4)H(9))(3)(C(14)H(10)NO(3))](n), is composed of polymeric chains wherein the metal center exhibits a distorted trigonal-bipyramidal geometry, with three n-butyl groups defining the trigonal plane [mean Sn[bond]C 2.133 (7) A] and the axial positions being occupied by the carboxylate O atoms of two different N-(1-naphthyl)maleamate ligands with inequivalent Sn[bond]O distances [2.167 (4) and 2.457 (4) A]. The N-(1-naphthyl)maleamate fragment forms an essentially planar seven-membered ring involving an intramolecular N[bond]H...O hydrogen bond.

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Heteroatom influence on the pi-facial selectivity of Diels-Alder cycloadditions to 1-oxa-4-thia-6-vinylspiro[4.5]dec-6-ene, 3-methoxy-3-methyl-2-vinylcyclohexene, and 3-methoxy-2-vinylcyclohexene.

The facial selectivities of the Diels-Alder cycloadditions of several dienophiles to the title substrates were studied. The observed selectivities are interpreted as a consequence of the relative steric interactions offered by the substituents. The addition of dimethylacetylene dicarboxylate (DMAD) is influenced by the electrostatic repulsion arising from the interaction of an electron pair orbital on the acetal oxygen and the orthogonal pi-orbital of the acetylene unit in DMAD in the syn-to-oxygen addition of the latter. This repulsion is offset on coordination of Li+ to the said oxygen electron pair orbital, and the addition thus proceeds syn to oxygen. The enhanced and accelerated syn-to-oxygen addition in lithium perchlorate in nitromethane is interpreted as a consequence of the coordination of Li+ to both the acetal oxygen and a heteroatom in the dienophile that brings them in close proximity to facilitate a reaction. The Li+-oxygen combination, however, also exerts some steric effect that results in reduced syn-to-oxygen addition of dienophiles having large substituents such as N-phenylmaleimide.

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Three tetrahydroisoquinolinedione derivatives.

N-(2-Chlorobenzyl)-1,2,3,4-tetrahydroisoquinoline-1,3-dione, C(16)H(12)ClNO(2), crystallizes in P2(1)/n with three crystallographically independent molecules in the asymmetric unit, which differ slightly in conformation, N-(2-bromo-4-methylphenyl)-1,2,3,4-tetrahydroisoquinoline-1,3-dione, C(16)H(12)BrNO(2), crystallizes in P2(1)/n with one molecule in the asymmetric unit and N-(2,3-dichlorophenyl)-1,2,3,4-tetrahydroisoquinoline-1,3-dione, C(15)H(9)Cl(2)NO(2), crystallizes in P2(1)/c with one molecule in the asymmetric unit. In all three structures, the heterocyclic rings adopt approximately planar conformations. The pyridine rings are orthogonal to the substituted phenyl rings. In all three structures, the crystal packing is stabilized by intermolecular C-H...O hydrogen bonds.

Hydrogen Bonding↗

Asymmetric methoxyselenenylations and cyclizations with 3-camphorseleno electrophiles containing oxime substituents at C-2. Formation of an unusual oxaselenazole from an oxime-substituted selenenyl bromide.

Di[(1R)-2-Oximo-endo-3-bornyl] diselenide (4) and its benzoate derivative 5 were prepared from the corresponding known 2-keto diselenide 1. Treatment of 4 and 5 with bromine, followed by silver triflate in methanol-dichloromethane, generated the corresponding selenenyl triflates 6b and 7b. The latter reagents reacted with a variety of mono-, di-, and trisubstituted alkenes to afford the corresponding 1,2-addition products (beta-methoxy selenides) in a highly diastereoselective manner. The free oxime 6b was particularly effective in such methoxyselenenylations, giving diastereomeric ratios (d.r.s) ranging from 86:14 to > 98:2. Even cis-disubstituted alkenes, which typically give poor d.r.s in similar additions with other chiral selenium electrophiles, underwent highly stereoselective additions with this reagent. Reductive deselenizations of the adducts obtained from styrene and cis- and trans-stilbene provided the corresponding methyl ethers, whose absolute configurations were determined by comparison with authentic samples. As expected, the dominant enantiomers thus obtained from cis- and trans-stilbene, using either 6b or 7b, had opposite configurations. Moreover, each geometrical isomer of stilbene produced methyl ethers with the same configuration when treated with either the oxime 6b or the benzoate 7b. Coordination effects between the substituents at the 2-position of the camphor molecule and the positive selenium atoms in the intermediate seleniranium ions are believed to play an important role in determining the stereochemical outcome of methoxyselenenylations. Selenenyl triflate 6b and selenenyl chloride 7c were also investigated in the electrophilic cyclizations of several unsaturated alcohols and carboxylic acids. However, diastereoselectivities were typically much lower than in the methoxyselenenylations. When the selenenyl bromide 6a, derived from the addition of bromine to the corresponding diselenide 4, was allowed to stand in the absence of an alkene, it underwent intramolecular cyclization with the oxime hydroxyl group, followed by further bromination, to afford the unusual oxaselenazole 11, whose structure was determined by spectroscopic means as well as by X-ray crystallography.

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A chlorinated monoterpene ketone, acylated beta-sitosterol glycosides and a flavanone glycoside from Mentha longifolia (Lamiaceae).

Mentha longifolia (Lamiaceae), an aromatic herb yielded a new halogenated chloro-derivative of menthone (longifone), two new derivatives of beta-sitosterol glycoside (longiside-A and -B) and a new flavanone-glycoside (longitin). The beta-sitosterol and flavanone glycosides were purified as their acetate derivatives. Structures of all the isolated constituents were elucidated with the aid of HMBC techniques. However, the structure of longifone was also determined through X-ray crystallography.

Acylation↗

New steroidal alkaloids from Fritillaria imperialis and their cholinesterase inhibiting activities.

Two new cevanine steroidal alkaloids, impericine (1) and forticine (2) along with known bases delavine (3), persicanidine A (4), and imperialine (5) were isolated from the bulbs of Fritillaria imperialis. The structures of impericine (1) [(20R,22S,25S)-5alpha-cevanin-23-ene-3beta,6beta,16beta-triol] and forticine (2) [(20S,22S,25S)-5alpha-cevanine-3beta,6beta-diol] were determined with the help of spectroscopic studies. These steroidal bases showed anti-acetylcholinesterase and anti-butyrylcholinesterase inhibitory activity.

Alkaloids↗

Steric and Solvation Effects on the Aggregation of Lithium Thioamidates: Single-Strand Polymers with (LiS)(n)() and (LiNCS)(n)() Backbones.

The addition of methyllithium or n-butyllithium to alkyl isothiocyanates produces lithium thioamidates {Li[RCS(NR')]}(n)(). Three such compounds were structurally characterized after recrystallization from THF. When R = n-Bu and R' = t-Bu, an unsolvated hexamer {Li[n-BuCS(N-t-Bu)]}(6) (1) is obtained. By contrast, the solvated derivatives {Li.THF[MeCS(N-t-Bu)]}(infinity) (2.THF) and {Li.2THF[MeCS(NMe)]}(infinity) (3.2THF) form single-strand polymers. The monosolvated complex 2.THF involves four-membered rings with an (LiS)(n)() backbone whereas the disolvate 3.2THF is comprised of LiNCS repeating units. The structures of all three aggregates can be generated via sterically directed solvation of a common dimeric precursor. Crystal data for 2.THF: C(10)H(20)NLiOS, monoclinic, P2(1)/a (#14), a = 9.129(2) Å, b = 11.099(2) Å, c = 12.537(2) Å, beta = 94.14(2) degrees, V = 1267.0(4) Å(3), Z = 4. Crystal data for 3.2THF: C(11)H(22)NLiSO(2), monoclinic, P2(1)/a (#14), a = 10.974(3) Å, b = 8.575(5) Å, c = 14.898(5) Å, beta = 91.33(3) degrees, V = 1401.6(10) Å(3), Z = 4.

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Reactions of cis-[(t)BuNTe(&mgr;-N(t)Bu)](2) with CF(3)SO(3)Me and M[O(3)SCF(3)] (M = Ag, Cu): Chelation, Cis --> Trans Isomerization, and the Spirocyclic Ligand [(t)BuNTe(&mgr;-N(t)Bu)(2)Te(&mgr;-O)](2).

The first investigations of coordination complexes of the tellurium diimide dimer [(t)BuNTe(&mgr;-N(t)Bu)](2) (1a) are presented. The coinage metals Ag(+) and Cu(+) were chosen to evaluate the ability of 1a to function as a chelating or bridging ligand. Reaction of 1a with Ag[O(3)SCF(3)] in toluene produces [Ag(2)L(2)][O(3)SCF(3)](2) (5, L = 1a) or, in the presence of LiCl, [Ag(2)L(2)(&mgr;-Cl)][O(3)SCF(3)] (3). In 4 the two Ag(+) ions bridge two molecules of cis-1a and engage in a weak Ag.Ag bonding interaction. In 3 the Cl(-) ion bridges two Ag(+) ions, which are each chelated to the terminal N(t)Bu groups of 1a. Treatment of 1a with Cu[O(3)SCF(3)] in toluene yields {[CuL][CF(3)SO(3)]}(n)() (5) which, in turn, reacts with 1a to form [Cu(2)L(3)][CF(3)SO(3)](2) (6). In 6 the two Cu(+) ions bridge cis and trans forms of 1a. The hydrolysis products {[(t)BuNTe(&mgr;-N(t)Bu)(2)Te(&mgr;-O)](2)[M(H(2)N(t)Bu)](2)}[O(3)SCF(3)](2) (7a, M = Ag; 7b, M = Cu) and [Cu(2)L((t)BuNH(2))(2)][O(3)SCF(3)](2) (8) were also structurally characterized. The complexes 7a,b contain the dimer [(t)BuNTe(&mgr;-N(t)Bu)(2)(&mgr;-O)](2) in which one of the terminal N(t)Bu ligands in 1a is replaced by an O atom. The central Te(2)O(2) ring in this spirocyclic ligand is planar with unsymmetrical oxygen bridging [d(Te-O) = 1.885(7) and 2.170(7) Å in 7b]. The ligand 1a in 8 is in the trans conformation. Mono- or dimethylation of 1a with CF(3)SO(3)Me was shown to occur at the terminal nitrogens by (1)H and (125)Te NMR spectroscopy.

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Syntheses, Crystal Structures, Spectroscopic Characterization, and Electrochemical Studies of the Ditungsten(III) Complexes Cl(3)W(&mgr;-L)(3)WCl(3) and [Cl(3)W(&mgr;-L)(2)(&mgr;-Cl)WCl(3)](-) (L = 1,4-Dithiane, 1,4-Thioxane, pms = Pentamethylene Sulfide). C-S Bond Cleavage of the Bridging Thioether(s) in Cl(3)W(&mgr;-L)(3)WCl(3).

Reduction of WCl(4) with 1 equiv of sodium amalgam, in the presence of either a refluxing toluene or neat solution of the desired thioether, produces a mixture of Cl(3)W(&mgr;-L)(3)WCl(3) (L = 1,4-dithiane (1), 1,4-thioxane (2), pms = pentamethylene sulfide (3)) and [Na][Cl(3)W(&mgr;-L)(2)(&mgr;-Cl)WCl(3)] (L = 1,4-dithiane (4), 1,4-thioxane (5), pms (6)). 4 and 5 could be converted to 1 and 2, respectively, in the presence of excess L in refluxing toluene. The structures of 1, 2, 3, 7, and 8 have been solved. 1, 2, and 3 are the first reported crystal structures for ditungsten(III) tris-bridged cyclic thioether complexes. Crystal data are as follows: for an acetone solvate of 1, monoclinic space group P2(1)/n (No. 14), a = 12.518(3) Å, b = 9.475(2) Å, c = 27.408(3) Å, beta = 93.34(1) degrees, Z = 4; for an acetone solvate of 2, tetragonal space group P4/ncc (No. 130), a = 25.7603(3) Å, b = 25.7603(3) Å, c = 18.6771(2) Å, Z = 16; for a hexane solvate of 3, monoclinic space group P2(1)/n (No. 14), a = 11.874(4) Å, b = 21.823(3) Å, c = 12.545(3) Å, beta = 100.46(3) degrees, Z = 4; for an acetonitrile solvate of 7, monoclinic space group P2(1)/c (No. 14), a = 9.704(5) Å, b = 28.241(7) Å, c = 15.480(5) Å, beta = 98.55(4) degrees, Z = 4; for a chloroform solvate of 8, monoclinic space group P2(1)/a (No. 14), a = 13.531(4) Å, b = 25.207(5) Å, c = 14.083(3) Å, beta = 115.57(2) degrees, Z = 4. 1, 2, and 3 were all shown to undergo C-S bond cleavage of a bridging thioether by reaction with [PPh(4)][Sptol] (ptol = 4-methyl phenyl) to afford the anionic complexes [PPh(4)][Cl(3)W(&mgr;-S(CH(2)CH(2))(2)E)(2)(&mgr;-SCH(2)CH(2)ECH(2)CH(2)Sptol)WCl(3)] (E = S (9), O (10), CH(2) (12)). 1, 2, 7, and 8 undergo reversible one-electron reductions.

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