We are
interested in exploring the complex interactions between
an animal and its environment. Animals must recognize and
respond to multiple, complex environmental signals, and
translate this information into the appropriate behavioral
and developmental responses. What are the molecules, signaling
pathways and neuronal circuits that allow animals to respond
to environmental cues? Moreover, how does a memory of past
experience modify the animal's response?
The EGL-4 PKG acts with the
KIN-29 SIK and KIN-2 PKA to regulate chemoreceptor gene
expression and sensory behaviors in C. elegans. van
der Linden, A.M., Wiener, S., You, Y-J., Kim, K., Avery
L., and Sengupta, P. (2008) Genetics. 180, 1475-91. [PubMed]
Identification of two chemoreceptors mediating
responses to dauer-inducing pheromone in C. elegans. Kim,
K., Sato, K., Shibuya, M., Butcher, R.A., Ragains, J.R.,
Clardy, J., Thomas, J.H., Touhara, K. and Sengupta, P.
(2008) Submitted.
An olfactory neuron responds stochastically
to temperature and modulates Caenorhabditis elegans thermotactic behavior. Biron,
D., Wasserman, S., Thomas, J.H., Samuel, A.D., and Sengupta,
P. (2008). Proc Natl Acad Sci U S A 105, 11002-11007. [PubMed]
Sensory
signaling-dependent remodeling of olfactory cilia architecture
in C. elegans. Mukhopadhyay,
S., Lu, Y., Shaham, S., and Sengupta, P. (2008). Dev Cell 14, 762-774. [PubMed]
Elipsa is an early determinant of ciliogenesis that links
the IFT particle to membrane-associated small GTPase Rab8. Omori,
Y., Zhao, C., Saras, A., Mukhopadhyay, S., Kim, W., Furukawa,
T., Sengupta, P., Veraksa, A., and Malicki, J. (2008). Nat Cell Biol 10, 437-444. [PubMed]
Left-right olfactory asymmetry
results from antagonistic functions of voltage-activated
calcium channels and the Raw repeat protein OLRN-1 in C. elegans. Bauer
Huang, S.L., Saheki, Y., VanHoven, M.K., Torayama, I.,
Ishihara, T., Katsura, I., van der Linden, A., Sengupta,
P., and Bargmann, C.I. (2007). Neural Develop 2, 24. [PubMed]
Temperature and food mediate long-term thermotactic behavioral
plasticity by association-independent mechanisms in C.
elegans. Chi,
C.A., Clark, D.A., Lee, S., Biron, D., Luo, L., Gabel,
C.V., Brown, J., Sengupta, P., and Samuel, A.D. (2007).
J Exp Biol 210, 4043-4052. [PubMed]
Smell: the worm turns. Sengupta,
P. (2007) Nature 450, 35-36.
(Review) [PubMed]
From eye of newt to chemical
structure. Sengupta,
P., and Thomas, J.H. (2007). Nat Chem Biol 3, 368-369. (Review) [PubMed]
Distinct IFT mechanisms contribute to the generation
of ciliary structural diversity in C. elegans. Mukhopadhyay,
S., Lu, Y., Qin, H., Lanjuin, A., Shaham, S., and Sengupta,
P. (2007). EMBO J 26, 2966-2980. [PubMed]
Generation and modulation of chemosensory behaviors
in C. elegans. Sengupta,
P. (2007). Pflugers Arch 454, 721-734.
(Review) [PubMed]
KIN-29 SIK regulates chemoreceptor gene expression via
an MEF2 transcription factor and a class II HDAC. van
der Linden, A.M., Nolan, K.M., and Sengupta, P. (2007). EMBO J 26, 358-370. [PubMed]
A diacylglycerol
kinase modulates long-term thermotactic behavioral plasticity
in C. elegans. Biron,
D., Shibuya, M., Gabel, C., Wasserman, S.M., Clark, D.A.,
Brown, A., Sengupta, P., and Samuel, A.D. (2006). Nat Neurosci 9, 1499-1505.
[PubMed]
The AFD sensory neurons encode multiple functions underlying
thermotactic behavior in Caenorhabditis elegans. Clark,
D.A., Biron, D., Sengupta, P., and Samuel, A.D. (2006). J Neurosci 26, 7444-7451. [PubMed]
Identification of guanylyl cyclases
that function in thermosensory neurons of Caenorhabditis
elegans. Inada,
H., Ito, H., Satterlee, J., Sengupta, P., Matsumoto, K.,
and Mori, I. (2006). Genetics 172, 2239-2252. [PubMed]
Regulation of neuronal lineage decisions by
the HES-related bHLH protein REF-1.Lanjuin,
A., Claggett, J., Shibuya, M., Hunter, C.P., and Sengupta,
P. (2006). Dev Biol 290,
139-151. [PubMed]
The UNC-3 Olf/EBF protein represses alternate neuronal
programs to specify chemosensory neuron identity. Kim,
K., Colosimo, M.E., Yeung, H., and Sengupta, P. (2005). Dev
Biol 286, 136-148. [PubMed]
Regulation of chemosensory
and GABAergic motor neuron development by the C. elegans
Aristaless/Arx homolog alr-1. Melkman,
T., and Sengupta, P. (2005). Development 132, 1935-1949. [PubMed
Sensorimotor integration:
locating locomotion in neural circuits. Samuel,
A.D., and Sengupta, P. (2005). Curr Biol 15, R341-343. [PubMed]