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    专

    基于可调谐微环谐振器的混沌信号发生器

    699294828B1
    发明人
    张磊, 杨林
    受让人
    中国科学院半导体研究所
    申请人
    Samsung Electronics Co. Ltd.
    申请号
    56181
    申请日
    2001-02-22
    公开(公告)号
    699294828B1
    公开(公告)日
    1985-08-29
    IPC分类号
    G01S007/40
    CPC分类号
    -
    优先权号
    121234
    优先权日
    2020-09-20
    摘要

    본 고안은 시각 장애자용 고무 타일에 관한 것으로서, 더욱 상세히는 시각 장애인이 통상의 보행상태에서 주로 발바닥이나 지팡이의 촉감으로 그 존재 및 대강의 형태를 확인할 수 있도록 돌기를 표면에 형성한 고무타일에 관한 것이다. 통상 상면부에 돌출형으로 구성되는 하나 이상의 감지돌부(2)를 갖는 시각 장애자용 고무타일(1)에 있어서, 상기 고무타일(1)의 감지돌부(2)중 하나 이상은 야광체로 이루어진 감지돌부(2a)로 구성하여 고무타일(1)에 결합구성한 것으로서, 본 고안에 의하면 주로 야간 및 어두운 장소, 예를 들어 지하철 역내 또는 관공서 내부 등지에 설치하여 시각장애자는 물론 장애정도가 미약한 약시자나 일반인에게도 방향과 위치를 쉽게 식별할 수 있도록 하였고, 불시의 정전 사고 시에 안전사고의 위험을 최소화하여 안전하게 보행자의 길잡이 역할을 수행할 수 있는 것이다.

    权利要求
    1 . A resource indication method, comprising: generating a physical layer protocol data unit (PPDU), the PPDU comprising a universal signal (U-SIG) field including a preamble puncturing information field, wherein a field in the U-SIG field indicates whether the PPDU is in an orthogonal frequency division multiple access (OFDMA) transmission mode or a non-orthogonal frequency division multiple access (non-OFDMA) transmission mode, and wherein: when the field in the U-SIG field indicates that the PPDU is in the non-OFDMA transmission mode, the preamble puncturing information field indicates a puncturing status of an entire bandwidth corresponding to the PPDU; when the field in the U-SIG field indicates that the PPDU is in the OFDMA transmission mode, the preamble puncturing information field indicates a puncturing status of 80 MHz corresponding to a frequency domain fragment; and sending the PPDU.
    2 . The method according to claim 1 , wherein the U-SIG field comprises a bandwidth field.
    3 . The method according to claim 2 , wherein the PPDU is in non-OFDMA transmission mode, and the bandwidth field indicates that the entire bandwidth corresponding to the PPDU is an 80 MHz bandwidth, the preamble puncturing information field indicates that no puncturing is performed or that only one 20 MHz bandwidth of the 80 MHz bandwidth is punctured.
    4 . The method according to claim 3 , wherein the 80 MHz bandwidth sequentially comprises a first 20 MHz, a second 20 MHz, a third 20 MHz, and a fourth 20 MHz in ascending order of frequencies, and a puncturing status corresponding to the 80 MHz bandwidth is one of the following puncturing statuses: [1 1 1 1], [x 1 1 1], [1 x 1 1], [1 1 x 1], and [1 1 1 x], wherein 1 indicates a non-punctured state, and x indicates a punctured state, and the PPDU is not transmitted on the channel corresponding to a punctured state.
    5 . The method according to claim 2 , wherein the PPDU is in non-OFDMA transmission mode, and the bandwidth field indicates that the entire bandwidth corresponding to the PPDU is a 160 MHz bandwidth, the preamble puncturing information field indicates that no puncturing is performed or that one 20 MHz or 40 MHz bandwidth of the 160 MHz bandwidth is punctured.
    6 . The method according to claim 5 , wherein the 160 MHz sequentially comprises a first 20 MHz, a second 20 MHz, a third 20 MHz, a fourth 20 MHz, a fifth 20 MHz, a sixth 20 MHz, a seventh 20 MHz, and an eighth 20 MHz, wherein when no puncturing is performed, the puncturing status of the 160 MHz bandwidth is [1 1 1 1 1 1 1 1 1 1 1]; or when 20 MHz bandwidth is punctured, the puncturing status of the 160 MHz bandwidth is one of the following puncturing status: [x 1 1 1 1 1 1 1], [1 x 1 1 1 1 1 1], [1 1 x 1 1 1 1 1], [1 1 1 x 1 1 1 1], [1 1 1 1 x 1 1 1 1], [1 1 1 1 1 x 1 1], [1 1 1 1 1 x 1] and [1 1 1 1 1 1 1 x]; or when 40 MHz is punctured, the puncturing status of the 160 MHz bandwidth is one of the following puncturing status: [x x 1 1 1 1 1 1], [1 1 x x 1 1 1], [1 1 1 1 x x 1 1] and [1 1 1 1 1 1 x x]; wherein 1 indicates a non-punctured state, and x indicates a punctured state, and the PPDU is not transmitted on the channel corresponding to a punctured state.
    7 . The method according to claim 2 , wherein the PPDU is in non-OFDMA transmission mode, and the bandwidth field indicates that the entire bandwidth corresponding to the PPDU is a 320 MHz bandwidth, the preamble puncturing information field indicates that no puncturing is performed or that one 80 MHz or 120 MHz bandwidth of the 320 MHz bandwidth is punctured.
    8 . The method according to claim 2 , wherein the PPDU is in OFDMA transmission mode, and the bandwidth indication field indicates that the bandwidth of the PPDU is 80 MHz or 160 MHz or 320 MHz, which corresponds to one or more 80 MHz bandwidth frequency domain fragments, the preamble puncturing information field indicating a puncturing status of a corresponding 80 MHz bandwidth frequency domain fragment of the one or more 80 MHz bandwidth frequency domain fragments, and wherein the puncturing status of the corresponding 80 MHz bandwidth frequency domain fragment includes one of the following puncturing statuses: [1 1 1 1], [x 1 1 1], [1 x 1 1], [1 1 x 1], [1 1 1 x], [x x 1 1], and [1 1 x x], wherein 1 indicates a non-punctured state, and x indicates a punctured state, each value corresponds to a respective 20 MHz bandwidth in the corresponding 80 MHz frequency domain fragment and the PPDU is not transmitted on a 20 MHz bandwidth corresponding to a punctured state.
    9 . A communication apparatus, wherein the apparatus comprises: a processor, configured to generate a physical layer protocol data unit (PPDU), wherein the PPDU comprises a universal signal (U-SIG) field, a field in the U-SIG field indicates whether the PPDU is in an orthogonal frequency division multiple access (OFDMA) transmission mode or a non-orthogonal frequency division multiple access (non-OFDMA) transmission mode, and the U-SIG field comprises a preamble puncturing information field; wherein: when the field in the U-SIG field indicates that the PPDU is in the non-OFDMA transmission mode, the preamble puncturing information field indicates a puncturing status of an entire bandwidth corresponding to the PPDU; when the field in the U-SIG field indicates that the PPDU is in the OFDMA transmission mode, the preamble puncturing information field indicates a puncturing status of 80 MHz corresponding to a frequency domain fragment; and a communication interface, configured to send the PPDU.
    10 . The apparatus according to claim 9 , wherein the U-SIG field comprises a bandwidth field.
    11 . The apparatus according to claim 10 , wherein the PPDU is in non-OFDMA transmission mode, the bandwidth field indicates that the entire bandwidth corresponding to the PPDU is an 80 MHz bandwidth, and the preamble puncturing information field indicates that no puncturing is performed or that only one 20 MHz bandwidth of the 80 MHz bandwidth is punctured.
    12 . The apparatus according to claim 11 , wherein the 80 MHz bandwidth sequentially comprises a first 20 MHz, a second 20 MHz, a third 20 MHz, and a fourth 20 MHz in ascending order of frequencies, and a puncturing status corresponding to the 80 MHz bandwidth is one of the following puncturing statuses: [1 1 1 1], [x 1 1 1], [1 x 1 1], [1 1 x 1], and [1 1 1 x], wherein 1 indicates a non-punctured state, and x indicates a punctured state, and the communication interface is configured to not transmit the PPDU on the channel corresponding to a punctured state.
    13 . The apparatus according to claim 10 , wherein the PPDU is in non-OFDMA transmission mode, the bandwidth field indicates that the entire bandwidth corresponding to the PPDU is a 160 MHz bandwidth, and the preamble puncturing information field indicates that no puncturing is performed or that one 20 MHz or 40 MHz bandwidth of the 160 MHz bandwidth is punctured.
    14 . The apparatus according to claim 13 , wherein the 160 MHz sequentially comprises a first 20 MHz, a second 20 MHz, a third 20 MHz, a fourth 20 MHz, a fifth 20 MHz, a sixth 20 MHz, a seventh 20 MHz, and an eighth 20 MHz, wherein the preamble puncturing information field indicates that no puncturing is performed, and the puncturing status of the 160 MHz bandwidth is [1 1 1 1 1 1 1 1 1 1]; or the preamble puncturing information field indicates that 20 MHz bandwidth is punctured, and the puncturing status of the 160 MHz bandwidth is one of the following puncturing status: [x 1 1 1 1 1 1 x1] and [1 1 1 1 1 1 x]; or the preamble puncturing information field indicates that 40 MMz is punctured, and the puncturing status of the 160 MMz bandwidth is one of the following puncturing status: [x x 1 1 1 1 1 1], [1 1 x x 1 1 1 1], [1 1 1 1 1 x x 1] and [1 1 1 1 1 1 x x]; wherein 1 indicates a non-punctured state, and x indicates a punctured state, and the communication interface is configured to not transmit the PPDU on the channel corresponding to a punctured state.
    15 . The apparatus according to claim 10 , wherein the PPDU is in non-OFDMA transmission mode, the bandwidth field indicates that the entire bandwidth corresponding to the PPDU is a 320 MMz bandwidth, and the preamble puncturing information field indicates that no puncturing is performed or that one 80 MHz or 120 MHz bandwidth of the 320 MMz bandwidth is punctured.
    16 . The apparatus according to claim 10 , wherein the PPDU is in OFDMA transmission mode, and the bandwidth indication field indicates that the bandwidth of the PPDU is 80 MMz or 160 MMz or 320 MMz, which corresponds to one or more 80 MMz bandwidth frequency domain fragments, the preamble puncturing information field indicating a puncturing status of a corresponding 80 MMz bandwidth frequency domain fragment of the one or more 80 MHz bandwidth frequency domain fragments, and wherein the puncturing status of the corresponding 80 MMz bandwidth frequency domain fragment includes one of the following puncturing statuses: [1 1 1 1], [x 1 1 1], [1 x 1 1], [1 1 x 1], [1 1 1 x], [x x 1 1], and [1 1 x x], wherein 1 indicates a non-punctured state, and x indicates a punctured state, each value corresponds to a respective 20 MMz bandwidth in the corresponding 80 MMz frequency domain fragment and the communication interface is configured to not transmit the PPDU on a 20 MHz bandwidth corresponding to a punctured state.
    17 . A non-transitory computer-readable storage medium, wherein the non-transitory computer-readable storage medium stores a computer program, the computer program comprises program instructions; and when the program instructions are executed by a computer, the computer is enabled to perform the following steps: generating a physical layer protocol data unit (PPDU), wherein the PPDU comprises a universal signal (U-SIG) field, and the U-SIG field comprises a preamble puncturing information field, wherein a field in the U-SIG field indicates whether the PPDU is in an orthogonal frequency division multiple access (OFDMA) transmission mode or a non-orthogonal frequency division multiple access (non-OFDMA) transmission mode, and wherein: when the field in the U-SIG field indicates that the PPDU is in the non-OFDMA transmission mode, the preamble puncturing information field indicates a puncturing status of an entire bandwidth corresponding to the PPDU; when the field in the U-SIG field indicates that the PPDU is in the OFDMA transmission mode, the preamble puncturing information field indicates a puncturing status of 80 MHz corresponding to a frequency domain fragment; and sending the PPDU.
    18 . The non-transitory computer-readable storage medium according to claim 17 , wherein the PPDU is in non-OFDMA transmission mode, the U-SIG field comprises a bandwidth field, and the bandwidth field indicates that the entire bandwidth corresponding to the PPDU is an 80 MHz bandwidth, the preamble puncturing information field indicates that no puncturing is performed or that only one 20 MHz bandwidth of the 80 MHz bandwidth is punctured.
    19 . The non-transitory computer-readable storage medium according to claim 17 , wherein the PPDU is in non-OFDMA transmission mode, and the bandwidth field indicates that the entire bandwidth corresponding to the PPDU is a 160 MHz bandwidth, the preamble puncturing information field indicates that no puncturing is performed or that one 20 MHz or 40 MHz bandwidth of the 160 MHz bandwidth is punctured.
    20 . The non-transitory computer-readable storage medium according to claim 17 , wherein the PPDU is in OFDMA transmission mode, and the bandwidth indication field indicates that the bandwidth of the PPDU is 80 MHz or 160 MHz or 320 MHz, which corresponds to one or more 80 MHz bandwidth frequency domain fragments, the preamble puncturing information field indicating a puncturing status of a corresponding 80 MHz bandwidth frequency domain fragment of the one or more 80 MHz bandwidth frequency domain fragments, and wherein the puncturing status of the corresponding 80 MHz bandwidth frequency domain fragment includes one of the following puncturing status: [1 1 1 1], [x 1 1 1], [1 x 1 1], [1 1 x 1], [1 1 1 x], [x x 1 1], and [1 1 x x], wherein 1 indicates a non-punctured state, and x indicates a punctured state, each value corresponds to a respective 20 MHz bandwidth in the corresponding 80 MHz frequency domain fragment and when the program instructions are executed by the computer, the computer is further configured to not transmit the PPDU on a 20 MHz bandwidth corresponding to a punctured state.
    说明书
    [0001]This application is a continuation of application Ser. No. 11/828,389, filed Jul. 26, 2007, now abandoned, which is a divisional of application Ser. No. 10/547,987, filed Sep. 8, 2005, now U.S. Pat. No. 7,262,188, which is a 371 of International Application No. PCT/EP2004/002554, filed Mar. 9, 2004.
    [0002]BACKGROUND OF THE INVENTION
    [0003]This invention relates to novel phenyl sulfone compounds having pharmacological activity, processes for their preparation, to compositions containing them and to their use in the treatment of CNS and other disorders.
    [0004]WO 99/37623 (SmithKline Beecham plc) and EP 930302 (F. Hoffman La Roche) both describe a series of piperazinyl benzenesulfone derivatives which are claimed to have affinity for the 5-HT 6 receptor. DE 4238994 (BASF) describes a series of benzenesulfone derivatives which are claimed to be useful as markers for fingerprinting petroleum and petroleum products. EP602523 (Hoechst) describes a series of benzoyl guanidine derivatives which are claimed to be useful in a variety of cardiovascular disorders. WO 95/14004 (Pierre Fabre Medicament) describes a series of indolyl derivatives which are claimed to have affinity for the 5-HT 1 receptor.
    [0005]SUMMARY OF THE INVENTION
    [0006]A structurally novel class of compounds has now been found which also possess affinity for the 5-HT 6 receptor. The present invention therefore provides, in a first aspect, a compound of formula (I) or a pharmaceutically acceptable salt thereof:
    [0007]wherein: R 1 and R 2 independently represent hydrogen or C 1-6 alkyl or R 1 is linked to R 2 to form a group (CH 2 ) 2 , (CH 2 ) 3 or (CH 2 ) 4 ; R 3 independently represents hydrogen, halogen, C 1-6 alkyl, C 3-6 cycloalkyl, C 1-6 alkoxy, C 1-6 alkylthio, C 1-6 alkylsulfinyl, C 1-6 alkylsulfonyl, C 1-6 alkanoyl, CN, CF 3 , OCH 2 CF 3 , OCF 3 , hydroxyC 1-6 alkyl, hydroxyC 1-6 alkoxy, C 1 alkoxycarbonyl, C 1-6 alkoxyC 1-6 alkoxy, nitro, amino, C 1-6 alkylamino, diC 1-6 alkylamino or NR 4 COR 5 , where R 4 and R 5 are independently hydrogen or C 1-6 alkyl; m represents an integer from 1 to 5, such that wherein m is an integer greater than 1, said R 2 groups may optionally be linked to form a group CH 2 , (CH 2 ) 2 or (CH 2 ) 3 ; n represents an integer from 1 to 4; p represents 1 or 2; A represents a group —Ar 1 or —Ar 2 Ar 3 ; Ar 1 represents unsubstituted phenyl, naphthyl optionally substituted by 1, 2 or 3 substituents or monocyclic heteroaryl linked to the SO 2 group via a carbon atom and optionally substituted by 1, 2 or 3 substituents; Ar 2 represents phenyl or a monocyclic heteroaryl group linked to the SO 2 group via a carbon atom, each of which may be optionally substituted by 1, 2 or 3 substituents; Ar 3 represents a monocyclic heteroaryl group optionally substituted by 1, 2 or 3 substituents; substituents on Ar 1 , Ar 2 and Ar 3 are independently selected from the group consisting of halogen, hydroxy, cyano, nitro, trifluoromethyl, trifluoromethoxy, C 1-6 alkyl, trifluoromethanesulfonyloxy, pentafluoroethyl, C 1-6 alkoxy, arylC 1-6 alkoxy, C 1-6 alkylthio, C 1-6 alkoxyC 1-6 alkyl, C 3-7 cycloalkylC 1-6 alkoxy, C 1-6 alkanoyl, C 1-6 alkoxycarbonyl, C 1-6 alkylsulfonyl, C 1-6 alkylsulfinyl, C 1-6 alkylsulfonyloxy, C 1-6 alkylsulfonylC 1-6 alkyl, arylsulfonyl, arylsulfonyloxy, arylsulfonylC 1-6 alkyl, C 1-6 alkylsulfonamido, C 1-6 alkylNHCO—, C 1-6 alkylCONH—C 1-6 alkylsulfonamidoC 1-6 alkyl, C 1-6 alkylNHCOC 1-6 alkyl-, C 1-6 alkylCONHC 1-6 alkyl-, arylsulfonamido, arylCONH—, arylNHCO—, arylsulfonamidoC 1-6 alkyl, arylCONHC 1-6 alkyl, arylNHCOC 1-6 alkyl, aroyl, aroylC 1-6 alkyl, arylC 1-6 alkanoyl, or a group CONR 6 R 7 or SO 2 NR 6 R 7 , wherein R 6 and R 7 independently represent hydrogen or C 1-6 alkyl or together may be fused to form a 5- to 7-membered aromatic or non-aromatic heterocyclic ring optionally interrupted by an O or S atom; or solvates thereof.
    [0008]DETAILED DESCRIPTION OF THE INVENTION
    [0009]In one particular aspect of the present invention, there is provided a compound of formula (I) as defined above wherein p represents 1.
    [0010]Specific compounds of formula (I) which may be mentioned are those wherein A represents Ar 1 , Ar 1 represents unsubstituted phenyl and R 3 represents halogen or CF 3 .
    [0011]Alkyl groups, whether alone or as part of another group, may be straight chain or branched and the groups alkoxy and alkanoyl shall be interpreted similarly. Alkyl moieties are more preferably C 1-4 alkyl, eg. methyl or ethyl. The term ‘halogen’ is used herein to describe, unless otherwise stated, a group selected from fluorine, chlorine, bromine or iodine.
    [0012]The term “aryl” includes phenyl and naphthyl.
    [0013]The term “monocyclic heteroaryl” is intended to mean a 5-7 membered monocyclic aromatic ring containing 1 to 3 heteroatoms selected from oxygen, nitrogen and sulfur. Suitable examples of such monocyclic aromatic rings include thienyl, furyl, pyrrolyl, triazolyl, imidazolyl, oxazolyl, thiazolyl, oxadiazolyl, isothiazolyl, isoxazolyl, thiadiazolyl, pyrazolyl, pyrimidyl, pyridazinyl, pyrazinyl and pyridyl. Heteroaryl groups, as described above, may be linked to the remainder of the molecule via a carbon atom or, when present, a suitable nitrogen atom except where otherwise indicated above.
    [0014]It will be appreciated that wherein the above mentioned aryl or heteroaryl groups have more than one substituent, said substituents may be linked to form a ring, for example a carboxyl and amine group may be linked to form an amide group.
    [0015]Preferably R 1 represents hydrogen or methyl, most preferably hydrogen.
    [0016]Preferably R 2 represents hydrogen or methyl, most preferably hydrogen.
    [0017]Preferably R 3 represents hydrogen or halogen, most preferably hydrogen or a chlorine atom.
    [0018]Preferably m and n both represent 1.
    [0019]Preferably p represents 1.
    [0020]Preferably A represents a group —Ar 1 .
    [0021]When A represents a group —Ar 1 , Ar 1 preferably represents unsubstituted phenyl.
    [0022]Preferred compounds according to the invention include examples E1-E3 as shown below, or a pharmaceutically acceptable salt thereof.
    [0023]The compounds of formula (I) can form acid addition salts thereof. It will be appreciated that for use in medicine the salts of the compounds of formula (I) should be pharmaceutically acceptable. Suitable pharmaceutically acceptable salts will be apparent to those skilled in the art and include those described in J. Pharm. Sci., 1977, 66, 1-19, such as acid addition salts formed with inorganic acids e.g. hydrochloric, hydrobromic, sulfuric, nitric or phosphoric acid; and organic acids e.g. succinic, maleic, acetic, fumaric, citric, tartaric, benzoic, p-toluenesulfonic, methanesulfonic or naphthalenesulfonic acid. The present invention includes within its scope all possible stoichiometric and non-stoichiometric forms.
    [0024]The compounds of formula (I) may be prepared in crystalline or non-crystalline form, and, if crystalline, may optionally be solvated, eg. as the hydrate. This invention includes within its scope stoichiometric solvates (eg. hydrates) as well as compounds containing variable amounts of solvent (eg. water).
    [0025]Certain compounds of formula (I) are capable of existing in stereoisomeric forms (e.g. diastereomers and enantiomers) and the invention extends to each of these stereoisomeric forms and to mixtures thereof including racemates. The different stereoisomeric forms may be separated one from the other by the usual methods, or any given isomer may be obtained by stereospecific or asymmetric synthesis. The invention also extends to any tautomeric forms and mixtures thereof.
    [0026]The present invention also provides a process for the preparation of a compound of formula (I) or a pharmaceutically acceptable salt thereof, which process comprises:
    [0027](a) reacting a compound of formula (II)
    [0028]wherein R 3 , n and A are as defined above and L 1 represents a suitable leaving group such as a halogen atom (e.g. a chlorine, bromine or iodine atom) or a trifluoromethylsulfonyloxy group, with a compound of formula (III)
    [0029]wherein R 2 , m and p are as defined above and R 1a is as defined for R 1 or represents a suitable N-protecting group (such as t-butyloxycarbonyl (Boc), methyl or benzyloxycarbonyl) and thereafter as necessary removing an R 1a N-protecting group; or
    [0030](b) deprotecting a compound of formula (I) which is protected; and optionally thereafter
    [0031](c) interconversion to other compounds of formula (I).
    [0032]Process (a) typically comprises the use of a palladium, nickel or copper catalyst, for example a mixture of a palladium source such as Pd 2 (dba) 3 and a suitable ligand such as 2 2,2′-bis(diphenylphosphino)-1,1′-binaphthyl (BINAP) or (2-dicyclohexylphosphanylphenyl)-dimethylamine, together with a suitable base such as sodium t-butoxide or cesium carbonate, in an inert solvent such as 1,4-dioxane.
    [0033]In process (b), examples of protecting groups and the means for their removal can be found in T. W. Greene ‘Protective Groups in Organic Synthesis’ (J. Wiley and Sons, 1991). Suitable amine protecting groups include sulfonyl (e.g. tosyl), acyl (e.g. acetyl, 2′,2′,2′-trichloroethoxycarbonyl, benzyloxycarbonyl or t-butoxycarbonyl) and arylalkyl (e.g. benzyl), which may be removed by hydrolysis (e.g. using an acid such as hydrochloric acid) or reductively (e.g. hydrogenolysis of a benzyl group or reductive removal of a 2′,2′,2′-trichloroethoxycarbonyl group using zinc in acetic acid) as appropriate. Other suitable amine protecting groups include trifluoroacetyl (—COCF 3 ) which may be removed by base catalysed hydrolysis or a solid phase resin bound benzyl group, such as a Merrifield resin bound 2,6-dimethoxybenzyl group (ElIman linker), which may be removed by acid catalysed hydrolysis, for example with trifluoroacetic acid. A further amine protecting group includes methyl which may be removed using standard methods for N-dealkylation (e.g. 1-chloroethyl chloroformate under basic conditions followed by treatment with methanol).
    [0034]Process (c) may be performed using conventional interconversion procedures such as epimerisation, oxidation, reduction, alkylation, nucleophilic or electrophilic aromatic substitution, ester hydrolysis or amide bond formation. For example, N-dealkylation of a compound of formula (I) wherein R 1 represents an alkyl group to give a compound of formula (I) wherein R 1 represents hydrogen. It will be appreciated that such interconversion may be interconversion of protected derivatives of formula (I) which may subsequently be deprotected following interconversion.
    [0035]Compounds of formula (II) may be prepared by reaction of a compound of formula (IV)
    [0036]wherein R 3 , n and L 1 are as defined above and L 2 represents a suitable leaving group such as a halogen atom (e.g. a fluorine or chlorine atom), with a compound of formula A-M wherein A is as defined above and M is a metal residue such as magnesium halide or lithium in a suitable solvent such as tetrahydrofuran.
    [0037]Compounds of formula (III) and (IV) are either known in the literature or can be prepared by known methods.
    [0038]Pharmaceutically acceptable salts may be prepared conventionally by reaction with the appropriate acid or acid derivative.
    [0039]Compounds of formula (I) and their pharmaceutically acceptable salts have affinity for the 5-HT 6 receptor and are believed to be of potential use in the treatment of certain CNS disorders such as anxiety, depression, epilepsy, obsessive compulsive disorders, migraine, cognitive memory disorders (e.g. Alzheimers disease, age related cognitive decline and mild cognitive impairment), Parkinsons Disease, ADHD (Attention Deficit Disorder/Hyperactivity Syndrome), sleep disorders (including disturbances of Circadian rhythm), feeding disorders such as anorexia and bulimia, panic attacks, withdrawal from drug abuse such as cocaine, ethanol, nicotine and benzodiazepines, schizophrenia (in particular cognitive deficits of schizophrenia), stroke and also disorders associated with spinal trauma and/or head injury such as hydrocephalus. Compounds of the invention are also expected to be of use in the treatment of certain GI (gastrointestinal) disorders such as IBS (Irritable Bowel Syndrome). Compounds of the invention are also expected to be of use in the treatment of obesity.
    [0040]Thus the invention also provides a compound of formula (I) or a pharmaceutically acceptable salt thereof, for use as a therapeutic substance, in particular in the treatment or prophylaxis of the above disorders. In particular the invention provides for a compound of formula (I) or a pharmaceutically acceptable salt thereof, for use in the treatment of depression, anxiety, Alzheimers disease, age related cognitive dedine, ADHD, obesity, mild cognitive impairment, schizophrenia, cognitive deficits in schizophrenia and stroke.
    [0041]The invention further provides a method of treatment or prophylaxis of the above disorders, in mammals including humans, which comprises administering to the sufferer a therapeutically effective amount of a compound of formula (I) or a pharmaceutically acceptable salt thereof.
    [0042]5-HT 6 antagonists have the potential to be capable of increasing basal and learning-induced polysialylated neuron cell frequency in brain regions such as the rat medial temporal lobe and associated hippocampus, as described in WO 03/066056. Thus, according to a further aspect of the present invention, we provide a method of promoting neuronal growth within the central nervous system of a mammal which comprises the step of administering a compound of formula (I) or a pharmaceutically acceptable salt thereof.
    [0043]In another aspect, the invention provides the use of a compound of formula (I) or a pharmaceutically acceptable salt thereof in the manufacture of a medicament for use in the treatment or prophylaxis of the above disorders.
    [0044]In order to use the compounds of formula (I) in therapy, they will normally be formulated into a pharmaceutical composition in accordance with standard pharmaceutical practice. The present invention also provides a pharmaceutical composition, which comprises a compound of formula (I) or a pharmaceutically acceptable salt thereof, and a pharmaceutically acceptable carrier.
    [0045]A pharmaceutical composition of the invention, which may be prepared by admixture, suitably at ambient temperature and atmospheric pressure, is usually adapted for oral, parenteral or rectal administration and, as such, may be in the form of tablets, capsules, oral liquid preparations, powders, granules, lozenges, reconstitutable powders, injectable or infusable solutions or suspensions or suppositories. Orally administrable compositions are generally preferred.
    [0046]Tablets and capsules for oral administration may be in unit dose form, and may contain conventional exdpients, such as binding agents, fillers, tabletting lubricants, disintegrants and acceptable wetting agents. The tablets may be coated according to methods well known in normal pharmaceutical practice.
    [0047]Oral liquid preparations may be in the form of, for example, aqueous or oily suspension, solutions, emulsions, syrups or elixirs, or may be in the form of a dry product for reconstitution with water or other suitable vehicle before use. Such liquid preparations may contain conventional additives such as suspending agents, emulsifying agents, non-aqueous vehicles (which may include edible oils), preservatives, and, if desired, conventional flavourings or colourants.
    [0048]For parenteral administration, fluid unit dosage forms are prepared utilising a compound of the invention or pharmaceutically acceptable salt thereof and a sterile vehicle. The compound, depending on the vehicle and concentration used, can be either suspended or dissolved in the vehicle. In preparing solutions, the compound can be dissolved for injection and filter sterilised before filling into a suitable vial or ampoule and sealing. Advantageously, adjuvants such as a local anaesthetic, preservatives and buffering agents are dissolved in the vehicle. To enhance the stability, the composition can be frozen after filling into the vial and the water removed under vacuum. Parenteral suspensions are prepared in substantially the same manner, except that the compound is suspended in the vehicle instead of being dissolved, and sterilization cannot be accomplished by filtration. The compound can be sterilised by exposure to ethylene oxide before suspension in a sterile vehicle. Advantageously, a surfactant or wetting agent is included in the composition to facilitate uniform distribution of the compound.
    [0049]The composition may contain from 0.1% to 99% by weight, preferably from 10 to 60% by weight, of the active material, depending on the method of administration.
    [0050]The dose of the compound used in the treatment of the aforementioned disorders will vary in the usual way with the seriousness of the disorders, the weight of the sufferer, and other similar factors. However, as a general guide suitable unit doses may be 0.05 to 1000 mg, more suitably 0.05 to 200 mg, for example 20 to 40 mg; and such unit doses will preferably be administered once a day, although administration more than once a day may be required; and such therapy may extend for a number of weeks or months.
    [0051]All publications, including but not limited to patents and patent applications, cited in this specification are herein incorporated by reference as if each individual publication were specifically and individually indicated to be incorporated by reference herein as though fully set forth.
    [0052]The following Descriptions and Examples illustrate the preparation of compounds of the invention.
    [0053]Description 1
    [0054]3-Bromophenylsulfonyl fluoride (D1)
    [0055]To a stirred solution of 3-bromophenylsulfonyl chloride (5 g, 0.0196 mol) in acetonitrile (20 ml) was added potassium fluoride (2.27 g, 0.0391 mol) followed by 18-crown-6 ether (0.08 g) and the reaction stirred at room temperature for 18 h. The reaction mixture was then washed with water (60 ml), extracted with ethyl acetate (3×80 ml) and the combined organic extracts dried (Na 2 SO 4 ). Solvents were evaporated in vacuo to give a yellow oil (3.79 g, 81%).
    [0056]1 H NMR (CDCl 3 ) δ 7.55 (1H, t), 7.92 (1H, d), 7.95 (1H, d), 8.14 (1H, s).
    [0057]Description 2
    [0058]3-Phenylsulfonylbromobenzene (D2)
    [0059]To a stirred solution of 3-bromophenylsulfonyl fluoride (D1) (1 g, 4.18 mmol) in dry THF (20 ml) at −78° C., under argon was added phenylmagnesium bromide (1 M, 1.4 ml, 4.18 mmol) dropwise. The reaction was left to warm to room temperature overnight and then quenched with ammonium chloride (50 ml), extracted with ethyl acetate (3×40 ml) and the combined organic extracts dried (Na 2 SO 4 ). Solvents were evaporated in vacuo to give a colourless solid (1.09 g, 88%).
    [0060]1 H NMR (CDCl 3 ): δ 7.40 (1H, t), 7.50-7.55 (2H, m), 7.60 (1H, d), 7.69 (1H, d), 7.86 (1H, d), 7.93 (2H, d), 8.08 (1H, s).
    [0061]Description 3
    [0062]1-(3-Phenylsulfonylphenyl)-4-tert-butyloxycarbonyl piperazine (D3)
    [0063]A solution of 2 2,2′-bis(diphenylphosphino-1,1′-binaphthyl (BINAP) (62 mg, 0.1 mmol) and cesium carbonate (329 mg, 1.01 mmol) in dry dioxane (2 ml) were sonicated for 45 min, under argon. To this solution was added 3-phenylsulfonylbromobenzene (D2) (200 mg, 0.67 mmol) and 1-(tert-butyloxycarbonyl)piperazine (314 mg, 1.68 mmol) and the reaction heated at 100° C. for 18 h. The reaction mixture was evaporated in vacuo and the residue partitioned between water (50 ml) and dichbromethane (50 ml). The organic layer was washed with sat. sodium hydrogen carbonate (50 ml), 10% citric acid (50 ml), brine (50 ml) and then dried (MgSO 4 ). Solvents evaporated in vacuo and the residue purified by column chromatography (silica gel; 0-60% ethyl acetate/petroleum ether) to give the product as a colourless oil (192 mg, 71%)
    [0064]1 H NMR (CDCl 3 ): δ 1.48 (9H, s), 3.15-3.20 (4H, t), 3.55-3.60 (4H, t), 7.05 (1H, m), 7.36 (2H, m), 7.45 (1H, m), 7.50 (2H, m), 7.56 (1H, m), 7.94 (2H, d).
    [0065]Mass Spectrum: C 21 H 26 N 2 SO 4 requires 402; found: 403 (MH + ).
    [0066]Description 4
    [0067]4-(3-Phenylsulfonyl-2-chlorophenyl)piperazine-1-carboxylic acid tert-butyl ester (D4A) and 4-(5-Phenylsulfonyl-2-chlorophenyl)piperazine-1-carboxylic acid tert-butyl ester (D4B)
    [0068]1-(3-Phenylsulfonylphenyl)-4-tert-butyloxycarbonyl piperazine (D3) (84 mg, 0.20 mmol) was dissolved in acetic acid (5 ml) and heated at 60° C. Then N-chlorosuccinimide (28 mg, 0.20 mmol) was added and the stirred reaction mixture was heated at 60° C. for 24 h, then cooled to ambient temperature. The reaction mixture was diluted in dichloromethane and neutralised by addition of an aqueous solution of NaHCO 3 . The organic layer was dried with MgSO 4 and evaporated in vacuo to give two main products, which were separated by column chromatography eluting with dichloromethane/ethyl acetate (0-30%).
    [0069]Product D4A: 18 mg.
    [0070]1 H-NMR (CDCl 3 ): δ 1.46 (9H, s), 2.92 (4H, t), 3.53 (4H, t), 7.26 (1H, dd), 7.44 (1H, t), 7.50 (2H, tt), 7.59 (1H, tt), 7.94 (2H, dd), 8.10 (1H, dd).
    [0071]Mass Spectrum: C 21 H 25 35 ClN 2 O 4 S requires 436; Found 437 (MH + ).
    [0072]Product D4B: 40 mg.
    [0073]1 H-NMR (CDCl 3 ): δ 1.49 (9H, s), 3.01 (4H, t), 3.59 (4H, t), 7.47 (1H, d), 7.49-7.54 (3H, m), 7.55 (1H, d), 7.58 (1H, tt), 7.92 (2H, m).
    [0074]Mass Spectrum: C 21 H 25 35 ClN 2 O 4 S requires 436; Found 437 (MH + ).
    [0075]EXAMPLES
    [0076]Example 1
    [0077]1-(3-Phenylsulfonyl-phenyl)piperazine (E1)
    [0078]A solution of 1-(3-phenylsulfonylphenyl)-4-tert-butyloxycarbonyl piperazine (D3) (96 mg, 0.23 mmol) in 1,4-dioxane (3 ml) and 4M HCl (3 ml) was refluxed at 60° C. for 1 h. The solvents were then evaporated in vacuo and the product dried under high vacuum to give a yellow solid (69 mg, 96%)
    [0079]1 H NMR (DMSO-d 6 ): δ 1.49 (9H, s), 3.21 (4H, m), 3.44-3.47 (4H, m), 7.26 (1H, d), 7.37 (1H, d), 7.45-7.50 (2H, m), 7.60-7.65 (2H, m), 7.65-7.70 (1H, m), 7.95-7.98 (2H, d), 9.15 (2H, br-s).
    [0080]Mass Spectrum: C 16 H 18 N 2 SO 2 requires 302; found: 303 (MH + ).
    [0081]Example 2
    [0082]1-(3-Phenylsulfonyl-2-chlorophenyl)piperazine (E2)
    [0083]4-(3-Phenylsulfonyl-2-chlorophenyl)piperazine-1-carboxylic acid tert-butyl ester (D4A) was dissolved in 8 ml of 1,4-dioxane/4 M HCl 1:1. The mixture was heated at 60° C. for 1 h. The solvent was evaporated in vacuo to give the title product as a colourless solid.
    [0084]1 H-NMR (CD 3 OD): 3.21-3.35 (8H, m), 7.53-7.69 (5H, m), 7.90 (2H, d), 8.14 (1H, d).
    [0085]Mass Spectrum: C 16 H 17 35 ClN 2 O 2 S requires 336; Found 337 (MH + ).
    [0086]Example 3
    [0087]1-(5-Phenylsulfonyl-2-chlorophenyl)piperazine (E3)
    [0088]4-(5-Phenylsulfonyl-2-chlorophenyl)piperazine-1-carboxylic acid tert-butyl ester (D4B) was dissolved in 8 ml of 1,4-dioxane/4 M HCl 1:1. The mixture was heated at 60° C. for 1 h. The solvent was evaporated in vacuo to give the title product as a colourless solid.
    [0089]1 H-NMR (CD 3 OD): 3.29-3.59 (8H, m), 7.57-7.70 (6H, m), 7.97 (2H, d).
    [0090]Mass Spectrum: C 16 H 17 35 ClN 2 O 2 S requires 336; Found 337 (MH + ).
    [0091]Pharmacological Data
    [0092]Compounds can be tested following the procedures outlined in WO98/27081.
    [0093]The compounds of Examples E1-E3 were tested and showed good affinity for the 5-HT 6 receptor, having pKi values >7.5 at human cloned 5-HT 6 receptors, in particular the compounds of Examples E1-E2 had pKi values >8.0.
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