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1 minant hydrolytic product of the nerve agent soman.
2  the analogue for the chemical warfare agent soman.
3 seizurogenic dose of the anticholinesterase, soman.
4 y in response to the seizurogenic actions of soman.
5 hour and 24 hours after a convulsive dose of soman.
6               Rats were injected with either soman (100 microg/kg SC; equivalent to 0.9 LD50) or sali
7 ), akin in size and polar characteristics to soman (186 A(3)), was also found to bind to dual-cavity
8 ate constants for inactivation with P(S)C(S)-soman 4.3-, 11.8-, and 263-fold and with P(S)C(R)-soman
9 e injected with a single, convulsive dose of soman (77.7 micrograms/kg, i.m.).
10        A targeted method identified the aged soman adduct on serine 203 in peptide FGESAGAAS.
11 the initiation of seizures and gliosis after soman administration, predominantly by the activation of
12       The results demonstrate that following soman administration: (1) there is a rapid increase in g
13 s express Fos within 30-45 minutes following soman administration; (3) between 1 and 4 hours, resting
14 rence for the P(R) enantiomers of analogs of soman and cyclosarin, respectively, and a 5-fold prefere
15  is reversed for the hydrolysis of diazoxon, soman and especially sarin, thus changing the view of wh
16 xpressed rHu BChE in mouse blood neutralized soman and O-ethyl S-2-N,N-diisopropylaminoethyl methylph
17                    The P(S) stereoisomers of soman and sarin are known to be the more toxic stereoiso
18 toxicity of lethal doses of the nerve agents soman and sarin, and of paraoxon, the active metabolite
19 PON1, which also hydrolyses the nerve agents soman and sarin.
20  as well as the P-F bond of the nerve agents soman and sarin.
21 ying the arsenals of nerve agents, including soman and sarin.
22 rmediate complexes with the chemical weapons soman and tabun.
23 erence for binding of the P(S)C(S) isomer of soman and the P(S) isomer of sarin was also noted.
24 phosphonic acid (PMPA; hydrolysis product of soman) and isopropyl methylphosphonic acid (IMPA; hydrol
25   Here we report the structures of paraoxon, soman, and sarin complexes of group-VIII phospholipase A
26  are formed with diisopropylfluorophosphate, soman, and sarin.
27  purity for the military nerve agents sarin, soman, and VX has been developed.
28 osphonic acids (breakdown products of Sarin, Soman, and VX nerve agents) followed by their sensitive
29 t may hydrolyze nerve poisons such as sarin, soman, and VX, monitoring the decontamination of organop
30                                     Aging of soman- and sarin-inhibited acetylcholinesterase occurs b
31 ,3-dimethylbutyl) methylphosphonofluoridate (soman) are (92 +/- 7) x 10(6) M-1 min-1 and (13.7 +/- 0.
32 nd microglia in brain regions susceptible to soman become rapidly "reactive" in response to seizures.
33 osphonylation were additive for PSCR or PRCR soman, but were cooperative for the PSCS stereoisomer.
34  4.3-, 11.8-, and 263-fold and with P(S)C(R)-soman by 6.5-, 47.3-, and 685-fold, respectively.
35 tic reactivation and aging resistance of the soman conjugate.
36            E202Q MoAChE inactivated with the soman diastereomers yielded pK3 = 5.5-5.8.
37  were performed with the mixture of the four soman diastereomers, all labeled with tritium in Calpha.
38  PMPA was detected in 6 of the 7 (one of the soman-exposed hair samples was completely consumed in th
39 MPA was positively identified in 100% of the soman-exposed rats (N = 8) and was not detected in any o
40 yielding a quantity sufficient for detecting soman exposure.
41  to discern the exact role TRH has following soman exposure.
42                          By 90-120 min after soman, Fos and GFAP staining increased bilaterally in PC
43 es hydrolysis of nerve agents Sarin (GB) and Soman (GD) (and their less reactive simulants, dimethyl
44 s of a CWA simulant compound and nerve agent soman (GD) are as short as 7.3 min and 2.3 min, respecti
45 nerve agents (OPNAs) tabun (GA), sarin (GB), soman (GD), cyclosarin (GF), VR, VX, and VM adducts to t
46  toxic organophosphonate nerve agents sarin, soman, GF, VX, and rVX.
47 ter the exposure event, rats were exposed to soman, hair was collected after approximately 30 days, a
48                   Only G117H/E197Q catalyzed soman hydrolysis; all four soman stereoisomers as well a
49 entrapment of the organophosphonate, akin to soman in size (186 A(3)), triggers the transformation of
50 re the hydrolysis product of the nerve agent Soman in water.
51                           By 45-60 min after soman, increased Fos and GFAP staining in PC was evident
52 ne (TRH) in epileptogenic sites, we examined soman-induced convulsion effects on CNS TRH.
53 nvolved in the initiation and maintenance of soman-induced convulsions.
54 ochemical and behavioral consequences of the soman-induced increases in TRH, especially in the fronta
55     In the present study, we determined that soman-induced seizures also cause selective, rapid activ
56 nd norepinephrine triggers the production of soman-induced seizures initially in the piriform cortex
57            To investigate the role of ACh in soman-induced seizures, we lesioned cholinergic neurons
58 lnerable to the pathological consequences of soman-induced seizures.
59                          The dealkylation in soman-inhibited AChE at pH 5.0 +/- 0.2 and 25 degrees C
60 oncluded that Hupresin can be used to enrich soman-inhibited AChE solubilized from 8 mL of frozen hum
61                              Dealkylation in soman-inhibited AChEs is estimated to occur at >10(10) t
62                              Dealkylation in soman-inhibited BChE is consistent with the participatio
63 t the push-pull mechanism of dealkylation in soman-inhibited cholinesterases proposed previously.
64 Product analysis of dealkylation in P(S)C(S)-soman-inhibited electric eel acetylcholinesterase (AChE)
65      The rate constants for diastereomers of soman-inhibited trypsin at 37.0 +/- 0.2 degrees C are pH
66               Nearly symmetric pH curves for soman-inhibited wild-type and E197D Hu BChE gave pK2 = 3
67                           One hour following soman injection, staining was more intense in the pirifo
68                        By 24 hours following soman injection, there is marked neuropathology in the p
69 pinacolyl methylphosphonofluoridate (soman); soman is among the most toxic synthetic poisons known.
70                                              Soman is an organophosphorus (OP) compound which irrever
71 This suggests that the inhibition of AChE by soman leads to increased acetylcholine (ACh) and neurona
72 honofluoridic acid, 1-methylethyl ester) and soman (methylphosphonofluoridic acid, 1,2,2-trimethylpro
73  used for 20 mL of RBC AChE inhibited with a soman model compound.
74 reactivates in the presence of sarin but not soman or cyclosarin.
75 ent GD (pinacolyl methylphosphonofluoridate, Soman), [pinacolyl = 2-(3,3-dimethyl)butyl] produces pin
76                                              Soman (pinacolymethylphosphonofluoridate), a highly pote
77                                              Soman (pinacolymethylphosphonofluoridate), a highly pote
78 he 10(4)-fold more lethal PS stereoisomer of soman relative to the PR form.
79 aging is known in detail for the nerve gases soman, sarin, and tabun as well as the pesticide metabol
80 soon after acute exposure to lethal doses of soman, sarin, or paraoxon effectively and safely counter
81                             The nerve agents soman, sarin, VX, and tabun are deadly organophosphorus
82 ited by pinacolyl methylphosphonofluoridate (soman); soman is among the most toxic synthetic poisons
83 H/E197Q catalyzed soman hydrolysis; all four soman stereoisomers as well as sarin and VX were substra
84 d 0.128 min-1 for the PR/SCR, PSCS, and PRCS soman stereoisomers, respectively, at pH 7.5, 25 degrees
85     The organophosphorus nerve agents sarin, soman, tabun, and VX exert their toxic effects by inhibi
86                 Nerve agents, such as sarin, soman, tabun, and VX exert their toxicity by inhibiting
87 to discriminate between nerve agents, sarin, soman, tabun, VX and their mimics, in water or organic s
88  nerve agents DFP, tabun, sarin, cyclosarin, soman, VX, and Russian-VX.
89 e degradation product of nerve agents sarin, soman, VX, etc., was achieved with potentiometric measur
90 ants inactivated with P(S)C(S)- and P(S)C(R)-soman was compared.
91 thod for detection of nerve gases, Sarin and Soman, was proposed on the basis of their catalyzed hydr
92 ,3-dimethylbutyl) methylphosphonofluoridate (soman) were studied at 4.0 +/- 0.2 degrees C.

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