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Cereb Cortex 30: 534–549, 2020. doi:10.1093/cercor/bhz105.&#xA;Fourcaud-Trocmé N, Courtiol E, Buonviso N. Two distinct olfactory bulb sublaminar networks involved in gamma and beta oscillation generation: a CSD study in the anesthetized rat. Front Neural Circuits 8: 88, 2014. doi:10.3389/fncir.2014.00088.&#xA;Freeman WJ. Mass Action in the Nervous System. New York: Academic, 1975.&#xA;Fukunaga I, Herb JT, Kollo M, Boyden ES, Schaefer AT. Independent control of gamma and theta activity by distinct interneuron networks in the olfactory bulb. Nat Neurosci 17: 1208–1216, 2014. doi:10.1038/nn.3760.&#xA;Haberly LB. Neuronal circuitry in olfactory cortex. Anatomy and functional implications. Chem Senses 10: 219–238, 1985. doi:10.1093/chemse/10.2.219.&#xA;Crossref , ISIHardy D, Saghatelyan A. Different forms of structural plasticity in the adult olfactory bulb. Neurogenesis (Austin) 4: e1301850, 2017. doi:10.1080/23262133.2017.1301850.&#xA;Hirata Y. 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J Neurophysiol 16: 37–68, 1953. doi:10.1152/jn.1953.16.1.37.&#xA;Lagier S, Panzanelli P, Russo RE, Nissant A, Bathellier B, Sassoè-Pognetto M, Fritschy JM, Lledo PM. GABAergic inhibition at dendrodendritic synapses tunes ? oscillations in the olfactory bulb. Proc Natl Acad Sci USA 104: 7259–7264, 2007. doi:10.1073/pnas.0701846104.&#xA;Li G, Cleland TA. A coupled-oscillator model of olfactory bulb gamma oscillations. PLOS Comput Biol 13: e1005760, 2017. doi:10.1371/journal.pcbi.1005760.&#xA;Liu S, Puche AC, Shipley MT. The interglomerular circuit potently inhibits olfactory bulb output neurons by both direct and indirect pathways. J Neurosci 36: 9604–9617, 2016. doi:10.1523/JNEUROSCI.1763-16.2016.&#xA;Lowe G. Inhibition of backpropagating action potentials in mitral cell secondary dendrites. J Neurophysiol 88: 64–85, 2002. doi:10.1152/jn.2002.88.1.64.&#xA;Luskin MB. Restricted proliferation and migration of postnatally generated neurons derived from the forebrain subventricular zone. Neuron 11: 173–189, 1993. doi:10.1016/0896-6273(93)90281-U.&#xA;McTavish TS, Migliore M, Shepherd GM, Hines ML. Mitral cell spike synchrony modulated by dendrodendritic synapse location. Front Comput Neurosci 6: 3, 2012. doi:10.3389/fncom.2012.00003.&#xA;Migliore M, Shepherd GM. Dendritic action potentials connect distributed dendrodendritic microcircuits. J Comput Neurosci 24: 207–221, 2008. doi:10.1007/s10827-007-0051-9.&#xA;Migliore M, Hines ML, McTavish TS, Shepherd GM. Functional roles of synaptic clusters in the mitral-granule cell network of the olfactory bulb. Front Integr Nuerosci 4: 122, 2010. doi:10.3389/fnint.2010.00122.&#xA;Moreno MM, Linster C, Escanilla O, Sacquet J, Didier A, Mandairon N. Olfactory perceptual learning requires adult neurogenesis. Proc Natl Acad Sci USA 106: 17980–17985, 2009. doi:10.1073/pnas.0907063106.&#xA;Mori K, Yoshihara Y. Molecular recognition and olfactory processing in the mammalian olfactory system. Prog Neurobiol 45: 585–619, 1995. doi:10.1016/0301-0082(94)00058-P.&#xA;Nagayama S, Homma R, Imamura F. Neuronal organization of olfactory bulb circuits. Front Neural Circuits 8: 98, 2014. doi:10.3389/fncir.2014.00098.&#xA;Neville KR, Haberly LB. Beta and gamma oscillations in the olfactory system of the urethane-anesthetized rat. J Neurophysiol 90: 3921–3930, 2003. doi:10.1152/jn.00475.2003.&#xA;Nicoll RA. Inhibitory mechanisms in the rabbit olfactory bulb: dendrodendritic mechanisms. Brain Res 14: 157–172, 1969. doi:10.1016/0006-8993(69)90037-7.&#xA;Nicoll RA. Pharmacological evidence for GABA as the transmitter in granule cell inhibition in the olfactory bulb. Brain Res 35: 137–149, 1971. doi:10.1016/0006-8993(71)90600-7.&#xA;Osinski BL, Kay LM. Granule cell excitability regulates gamma and beta oscillations in a model of the olfactory bulb dendrodendritic microcircuit. J Neurophysiol 116: 522–539, 2016. doi:10.1152/jn.00988.2015.&#xA;Phillips CG, Powell TPS, Shepherd GM. The mitral cells of the rabbit olfactory bulb. J Physiol 156: 26P–27P, 1961.&#xA;Phillips CG, Powell TPS, Shepherd GM. Response of mitral cells to stimulation of the lateral olfactory tract in the rabbit. J Physiol 168: 65–88, 1963. doi:10.1113/jphysiol.1963.sp007178.&#xA;Poirazi P, Papoutsi A. Illuminating dendritic function with computational models. Nat Rev Neurosci 21: 303–321, 2020. doi:10.1038/s41583-020-0301-7.&#xA;Pressler RT, Strowbridge BW. Direct recording of dendrodendritic excitation in the olfactory bulb: divergent properties of local and external gluamtergic inputs govern synaptic integration in granule cells. J Neurosci 37: 11774–11788, 2017. doi:10.1523/JNEUROSCI.2033-17.2017.&#xA;Pressler RT, Strowbridge BW. Functional specialization of interneuron dendrites: identification of action potential initiation zone in axonless olfactory bulb granule cells. J Neurosci 39: 9674–9688, 2019. doi:10.1523/JNEUROSCI.1763-19.2019.&#xA;Rall W. Theoretical significance of dendritic trees for neuronal input-output relations. In: Neural Theory and Modeling, edited by Reiss RF. Palo Alto, CA: Stanford University Press, 1964, p. 117–146.&#xA;Rall W, Shepherd GM. Theoretical reconstruction of field potentials and dendrodendritic synaptic interactions in olfactory bulb. J Neurophysiol 31: 884–915, 1968. doi:10.1152/jn.1968.31.6.884.&#xA;Rall W, Shepherd GM, Reese TS, Brightman MW. Dendrodendritic synaptic pathway for inhibition in the olfactory bulb. Exp Neurol 14: 44–56, 1966. doi:10.1016/0014-4886(66)90023-9.&#xA;Ramon-Moliner E. The reciprocal synapses of the olfactory bulb: questioning the evidence. Brain Res 128: 1–20, 1977. doi:10.1016/0006-8993(77)90232-3.&#xA;Reese TS, Brightman MW. Olfactory surface and central olfactory connections in some vertebrates. In: Taste and Smell in Vertebrates, edited by Wolstenhome GEW, Knight J. London, UK: J&amp;A Churchill, 1970, p. 115–149.&#xA;Saghatelyan A, Roux P, Migliore M, Rochefort C, Desmaisons D, Charneau P, Shepherd GM, Lledo P-M. Activity-dependent adjustments of the inhibitory network in the olfactory bulb following early postnatal deprivation. Neuron 46: 103–116, 2005. doi:10.1016/j.neuron.2005.02.016.&#xA;Sailor KA, Valley MT, Wiechert MT, Riecke H, Sun GJ, Adams W, Dennis JC, Sharafi S, Ming GL, Song H, Lledo P-M. Persistent structural plasticity optimizes sensory information processing in the olfactory bulb. Neuron 91: 384–396, 2016. doi:10.1016/j.neuron.2016.06.004.&#xA;Schoppa NE, Kinzie JM, Sahara Y, Segerson TP, Westbrook GL. Dendrodendritic inhibition in the olfactory bulb is driven by NMDA receptors. J Neurosci 18: 6790–6802, 1998. doi:10.1523/JNEUROSCI.18-17-06790.1998.&#xA;Segev I, Rall W. Computational study of an excitable dendritic spine. J Neurophysiol 60: 499–523, 1988. doi:10.1152/jn.1988.60.2.499.&#xA;Shao Z, Liu S, Zhou F, Puche AC, Shipley MT. Reciprocal inhibitory glomerular circuits contribute to excitation-inhibition balance in the mouse olfactory bulb. eNeuro 6: ENEURO.0048-19.2019, 2019. doi:10.1523/ENEURO.0048-19.2019.&#xA;Shen GY, Chen WR, Midtgaard J, Shepherd GM, Hines ML. Computational analysis of action potential initiation in mitral cell soma and dendrites based on dual patch recordings. J Neurophysiol 82: 3006–3020, 1999. doi:10.1152/jn.1999.82.6.3006.&#xA;Shepherd GM. Transmission in the olfactory pathway (DPhil thesis). Oxford, UK: Oxford University, 1962.&#xA;Shepherd GM. Responses of mitral cells to olfactory nerve volleys in the rabbit. J Physiol 168: 89–100, 1963a. doi:10.1113/jphysiol.1963.sp007179.&#xA;Shepherd GM. Neuronal systems controlling mitral cell excitability. J Physiol 168: 101–117, 1963b. doi:10.1113/jphysiol.1963.sp007180.&#xA;Shepherd GM. 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