RISS 학술연구정보서비스

검색

인기 검색어

    다국어 입력

    http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.

    변환된 중국어를 복사하여 사용하시면 됩니다.

    예시)
    • 中文 을 입력하시려면 zhongwen을 입력하시고 space를누르시면됩니다.
    • 北京 을 입력하시려면 beijing을 입력하시고 space를 누르시면 됩니다.
    닫기
    KCI등재 SCOPUS SCIE

    Olfactory Carbon Dioxide Detection by Insects and Other Animals

    한글로보기

    https://www.riss.kr/link?id=A103928615

    • 0

      상세조회
    • 0

      다운로드
    서지정보 열기
    • 내보내기
    • 내책장담기
    • 공유하기
    • 오류접수
    인용문이 복사되었습니다.

    부가정보

    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Carbon dioxide is a small, relatively inert, but highly vola-tile gas that not only gives beer its bubbles, but that also acts as one of the primary driving forces of anthropogenic climate change. While beer brewers experiment with the effects of CO2 on flavor and climate scientists are concerned with global changes to ambient CO2 levels that take place over the course of decades, many animal species are keenly aware of changes in CO2 concentration that occur much more rapidly and on a much more local scale. Although imperceptible to us, these small changes in CO2 concentration can indicate imminent danger, signal overcrowding, and point the way to food. Here I review several of these CO2-evoked behaviors and compare the systems insects, nematodes, and vertebrates use to detect environmental CO2.
    번역하기

    Carbon dioxide is a small, relatively inert, but highly vola-tile gas that not only gives beer its bubbles, but that also acts as one of the primary driving forces of anthropogenic climate change. While beer brewers experiment with the effects of CO2 ...

    Carbon dioxide is a small, relatively inert, but highly vola-tile gas that not only gives beer its bubbles, but that also acts as one of the primary driving forces of anthropogenic climate change. While beer brewers experiment with the effects of CO2 on flavor and climate scientists are concerned with global changes to ambient CO2 levels that take place over the course of decades, many animal species are keenly aware of changes in CO2 concentration that occur much more rapidly and on a much more local scale. Although imperceptible to us, these small changes in CO2 concentration can indicate imminent danger, signal overcrowding, and point the way to food. Here I review several of these CO2-evoked behaviors and compare the systems insects, nematodes, and vertebrates use to detect environmental CO2.

    더보기

    참고문헌 (Reference)

    1 Gibson, G, "Visual and olfactory responses of haematophagous Diptera to host stimuli" 13 : 2-23, 1999

    2 Benton, R, "Variant ionotropic glutamate receptors as chemosensory receptors in Drosophila" 136 : 149-162, 2009

    3 Jones, W.D, "Two chemosensory receptors together mediate carbon dioxide detection in Drosophila" 445 : 86-90, 2007

    4 Gillies, M.T, "The role of carbon dioxide in host-finding by mosquitoes (Diptera: Culicidae): a review" 70 : 525-532, 1980

    5 Stange, G, "The response of the honeybee antennal CO2-receptors to N2O and Xe" 86 : 139-158, 1973

    6 Ziesmann, J., "The physiology of an olfactory sensillum of the termite Schedorhinotermes lamanianus: carbon dioxide as a modulator of olfactory sensitivity" 179 : 123-133, 1996

    7 Kwon, J.Y, "The molecular basis of CO2 reception in Drosophila" 104 : 3574-3578, 2007

    8 Stange, G., "The influence of a carbonic anhydrase inhibitor on the function of the honeybee antennal CO2-receptors" 91 : 147-159, 1974

    9 Tashian, R.E, "The carbonic anhydrases: widening perspectives on their evolution, expression and function" 10 : 186-192, 1989

    10 Stange, G, "The CO2 sense of the moth Cactoblastis cactorum and its probable role in the biological control of the CAM plant Opuntia stricta" 102 : 341-352, 1995

    1 Gibson, G, "Visual and olfactory responses of haematophagous Diptera to host stimuli" 13 : 2-23, 1999

    2 Benton, R, "Variant ionotropic glutamate receptors as chemosensory receptors in Drosophila" 136 : 149-162, 2009

    3 Jones, W.D, "Two chemosensory receptors together mediate carbon dioxide detection in Drosophila" 445 : 86-90, 2007

    4 Gillies, M.T, "The role of carbon dioxide in host-finding by mosquitoes (Diptera: Culicidae): a review" 70 : 525-532, 1980

    5 Stange, G, "The response of the honeybee antennal CO2-receptors to N2O and Xe" 86 : 139-158, 1973

    6 Ziesmann, J., "The physiology of an olfactory sensillum of the termite Schedorhinotermes lamanianus: carbon dioxide as a modulator of olfactory sensitivity" 179 : 123-133, 1996

    7 Kwon, J.Y, "The molecular basis of CO2 reception in Drosophila" 104 : 3574-3578, 2007

    8 Stange, G., "The influence of a carbonic anhydrase inhibitor on the function of the honeybee antennal CO2-receptors" 91 : 147-159, 1974

    9 Tashian, R.E, "The carbonic anhydrases: widening perspectives on their evolution, expression and function" 10 : 186-192, 1989

    10 Stange, G, "The CO2 sense of the moth Cactoblastis cactorum and its probable role in the biological control of the CAM plant Opuntia stricta" 102 : 341-352, 1995

    11 Bretscher, A.J, "Temperature, oxygen, and salt-sensing neurons in C. elegans are carbon dioxide sensors that control avoidance behavior" 69 : 1099-1113, 2011

    12 Wang, Y.Y, "TRPA1 is a component of the nociceptive response to CO2" 30 : 12958-12963, 2010

    13 Sato, K., "Sugar-regulated cation channel formed by an insect gustatory receptor" 108 : 11680-11685, 2011

    14 Guo, D, "Stimulation of guanylyl cyclase-D by bicarbonate" 48 : 4417-4422, 2009

    15 Graber, M, "Side effects of acetazolamide: the champagne blues" 84 : 979-980, 1988

    16 Benton, A.H, "Sensory reactions of Siphonaptera in relation to host-finding" 119-125, 1965

    17 Yao, C.A, "Role of G-proteins in odorsensing and CO2-sensing neurons in Drosophila" 30 : 4562-4572, 2010

    18 Fallis, A.M, "Response of two African simuliids to silhouettes and carbon dioxide" 12 : 349-351, 1975

    19 Kain, P, "Reduced odor responses from anten-nal neurons of G(q)alpha, phospholipase Cbeta, and rdgA mutants in Drosophila support a role for a phospholipid intermediate in insect olfactory transduction" 28 : 4745-4755, 2008

    20 Hallem, E.A, "Receptor-type guanylate cyclase is required for carbon dioxide sensation by Caenorhabditis elegans" 108 : 254-259, 2011

    21 Dessirier, J.M, "Psychophysical and neurobiological evidence that the oral sensation elicited by carbonated water is of chemogenic origin" 25 : 277-284, 2000

    22 Pinto, M.C, "Phlebotomine sandfly responses to carbon dioxide and human odour in the field" 15 : 132-139, 2001

    23 Steullet, P, "Perception of breath components by the tropical bont tick, Amblyomma variegatum Fabricius (Ixodidae). I. CO2-excited and CO2-inhibited receptors" 170 : 665-676, 1992

    24 Buehlmann, C, "Path integration controls nest-plume following in desert ants" 22 : 645-649, 2012

    25 Barrozo, R.B, "Orientation response of haematophagous bugs to CO2: the effect of the temporal structure of the stimulus" 192 : 827-831, 2006

    26 Voskamp, K.E, "Olfactory responses to attractants and repellents in tsetse" 13 : 386-392, 1999

    27 Dillman, A.R, "Olfaction shapes host-parasite interactions in parasitic nematodes" 109 : E2324-E2333, 2012

    28 Lu, T, "Odor coding in the maxillary palp of the malaria vector mosquito Anopheles gambiae" 17 : 1533-1544, 2007

    29 de Bruyne, M, "Odor coding in the Drosophila antenna" 30 : 537-552, 2001

    30 Zimmer, M, "Neurons detect increases and decreases in oxygen levels using distinct guanylate cyclases" 61 : 865-879, 2009

    31 Bensafi, M, "Neural coding of stimulus concentration in the human olfactory and intranasal trigeminal systems" 154 : 832-838, 2008

    32 Badsha, F, "Mutants in Drosophila TRPC channels reduce olfactory sensitivity to carbon dioxide" 7 : e49848-, 2012

    33 Robertson, H.M, "Molecular evolution of the insect chemoreceptor gene superfamily in Drosophila melanogaster" 100 (100): 14537-14542, 2003

    34 Turner, S.L, "Modification of CO2 avoidance behaviour in Drosophila by inhibitory odorants" 461 : 277-281, 2009

    35 Omer, S.M, "Loss of response to carbon dioxide in palpectomized female mosquitoes" 14 : 251-252, 1971

    36 Han, J, "Loss of CO2 sensing by the olfactory system of CNGA3 knockout mice" 56 : 793-799, 2010

    37 Sato, K, "Insect olfactory receptors are heteromeric ligand-gated ion channels" 452 : 1002-1006, 2008

    38 Hansson, H.P, "Histochemical demonstration of carbonic anhydrase activity" 11 : 112-128, 1967

    39 Stange, G., "High resolution measurement of atmospheric carbon dioxide concentration changes by the labial palp organ of the moth Heliothis armigera (Lepidoptera: Noctuidae)" 171 : 317-324, 1992

    40 Sun, L, "Guanylyl cyclase-D in the olfactory CO2 neurons is activated by bicarbonate" 106 : 2041-2046, 2009

    41 Thom, C, "Floral CO2 reveals flower profitability to moths" 30 : 1285-1288, 2004

    42 Robertson, H.M, "Evolution of the gene lineage encoding the carbon dioxide receptor in insects" 9 : 19-, 2009

    43 Wicher, D, "Drosophila odorant receptors are both ligand-gated and cyclic-nucleotide-activated cation channels" 452 : 1007-1011, 2008

    44 Kain, P, "Drosophila mutants in phospholipid signaling have reduced olfactory responses as adults and larvae" 23 : 303-312, 2009

    45 Hu, J, "Detection of near-atmospheric concentrations of CO2 by an olfactory subsystem in the mouse" 317 : 953-957, 2007

    46 Young, J.M, "Degeneration of the olfactory guanylyl cyclase D gene during primate evolution" 2 : e884-, 2007

    47 Nakagawa, T, "Controversy and consensus: noncanonical signaling mechanisms in the insect olfactory system" 19 : 284-292, 2009

    48 Leinders-Zufall, T, "Contribution of the receptor guanylyl cyclase GC-D to chemosensory function in the olfactory epithelium" 104 : 14507-14512, 2007

    49 Weidenmüller, A, "Collective control of nest climate parameters in bumblebee colonies" 63 : 1065-1071, 2002

    50 Stange, G, "Carbon-dioxide sensing structures in terrestrial arthropods" 47 : 416-427, 1999

    51 Kleineidam, C, "Carbon dioxide concentrations and nest ventilation in nests of the leaf-cutting ant Atta vollenweideri" 47 : 241-248, 2000

    52 Seeley, T.D, "Atmospheric carbon dioxide regulation in honey-bee (Apis mellifera) colonies" 20 : 2301-2305, 1974

    53 Croset, V, "Ancient protostome origin of chemosensory ionotropic glutamate receptors and the evolution of insect taste and olfaction" 6 : e1001064-, 2010

    54 Munger, S.D, "An olfactory subsystem that detects carbon disulfide and mediates food-related social learning" 20 : 1438-1444, 2010

    55 Hallem, E.A, "Acute carbon dioxide avoidance in Caenorhabditis elegans" 105 : 8038-8043, 2008

    56 Ai, M, "Acid sensing by the Drosophila olfactory system" 468 : 691-695, 2010

    57 Juilfs, D.M, "A subset of olfactory neurons that selectively express cGMP-stimulated phosphodiesterase (PDE2) and guanylyl cyclase-D define a unique olfactory signal transduction pathway" 94 : 3388-3395, 1997

    58 Suh, G.S.B, "A single population of olfactory sensory neurons mediates an innate avoidance behaviour in Drosophila" 431 : 854-859, 2004

    59 Hallem, E.A, "A sensory code for host seeking in parasitic nematodes" 21 : 377-383, 2011

    60 Fülle, H.J, "A receptor guanylyl cyclase expressed specifically in olfactory sensory neurons" 92 : 3571-3575, 1995

    61 Scott, K., "A chemosensory gene family encoding candidate gustatory and olfactory receptors in Drosophila" 104 : 661-673, 2001

    62 Bretscher, A.J, "A carbon dioxide avoidance behavior is integrated with responses to ambient oxygen and food in Caenorhabditis elegans" 105 : 8044-8049, 2008

    63 Meyer, M.R, "A cGMP-signaling pathway in a subset of olfactory sensory neurons" 97 : 10595-10600, 2000

    더보기

    동일학술지(권/호) 다른 논문

    분석정보

    View

    상세정보조회

    0

    Usage

    원문다운로드

    0

    대출신청

    0

    복사신청

    0

    EDDS신청

    0

    동일 주제 내 활용도 TOP

    더보기

    주제

    연도별 연구동향

    연도별 활용동향

    연관논문

    연구자 네트워크맵

    공동연구자 (7)

    유사연구자 (20) 활용도상위20명

    인용정보 인용지수 설명보기

    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
    2020-01-01 등재 등재학술지 유지 (해외등재 학술지 평가) KCI등재
    2012-11-07 학술지명변경 한글명 : 분자와 세포 -> Molecules and Cells KCI등재
    2008-01-01 등재 SCI 등재 (등재유지) KCI등재
    2006-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2004-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2001-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    1998-07-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
    더보기

    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 2.77 0.19 1.85
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    1.37 1.11 0.379 0.03
    더보기

    이 자료와 함께 이용한 RISS 자료

    나만을 위한 추천자료

    해외이동버튼