Connection

JOHN SWANN to Epilepsy

This is a "connection" page, showing publications JOHN SWANN has written about Epilepsy.
Connection Strength

3.792
  1. IGF-1 impacts neocortical interneuron connectivity in epileptic spasm generation and resolution. Neurotherapeutics. 2025 Jan; 22(1):e00477.
    View in: PubMed
    Score: 0.519
  2. Brain state-dependent high-frequency activity as a biomarker for abnormal neocortical networks in an epileptic spasms animal model. Epilepsia. 2021 09; 62(9):2263-2273.
    View in: PubMed
    Score: 0.412
  3. How is homeostatic plasticity important in epilepsy? Adv Exp Med Biol. 2014; 813:123-31.
    View in: PubMed
    Score: 0.245
  4. Interictal high frequency oscillations in an animal model of infantile spasms. Neurobiol Dis. 2012 May; 46(2):377-88.
    View in: PubMed
    Score: 0.214
  5. Seizures in early life suppress hippocampal dendrite growth while impairing spatial learning. Neurobiol Dis. 2011 Nov; 44(2):205-14.
    View in: PubMed
    Score: 0.206
  6. Curing epilepsy: progress and future directions. Epilepsy Behav. 2009 Mar; 14(3):438-45.
    View in: PubMed
    Score: 0.175
  7. Recurrent seizures and the molecular maturation of hippocampal and neocortical glutamatergic synapses. Dev Neurosci. 2007; 29(1-2):168-78.
    View in: PubMed
    Score: 0.151
  8. The impact of seizures on developing hippocampal networks. Prog Brain Res. 2005; 147:347-54.
    View in: PubMed
    Score: 0.131
  9. The tetanus toxin model of chronic epilepsy. Adv Exp Med Biol. 2004; 548:226-38.
    View in: PubMed
    Score: 0.122
  10. PAK1 c.1409?T?>?a (p. Leu470Gln) de novo variant affects the protein kinase domain, leading to epilepsy, macrocephaly, spastic quadriplegia, and hydrocephalus: Case report and review of the literature. Am J Med Genet A. 2023 06; 191(6):1619-1625.
    View in: PubMed
    Score: 0.116
  11. Neuronal activity and the establishment of normal and epileptic circuits during brain development. Int Rev Neurobiol. 2001; 45:89-118.
    View in: PubMed
    Score: 0.099
  12. Spatial learning deficits without hippocampal neuronal loss in a model of early-onset epilepsy. Neuroscience. 2001; 107(1):71-84.
    View in: PubMed
    Score: 0.099
  13. Developmental neuroplasticity and epilepsy. Epilepsia. 2000 Aug; 41(8):1078-9.
    View in: PubMed
    Score: 0.096
  14. Spine loss and other dendritic abnormalities in epilepsy. Hippocampus. 2000; 10(5):617-25.
    View in: PubMed
    Score: 0.093
  15. Cellular abnormalities and synaptic plasticity in seizure disorders of the immature nervous system. Ment Retard Dev Disabil Res Rev. 2000; 6(4):258-67.
    View in: PubMed
    Score: 0.093
  16. Insights into the tetanus toxin model of early-onset epilepsy from long-term video monitoring during anticonvulsant therapy. Brain Res Dev Brain Res. 1999 Dec 10; 118(1-2):221-5.
    View in: PubMed
    Score: 0.092
  17. A chronic focal epilepsy with mossy fiber sprouting follows recurrent seizures induced by intrahippocampal tetanus toxin injection in infant rats. Neuroscience. 1999; 92(1):73-82.
    View in: PubMed
    Score: 0.086
  18. Developmental neuroplasticity: roles in early life seizures and chronic epilepsy. Adv Neurol. 1999; 79:203-16.
    View in: PubMed
    Score: 0.086
  19. Spine loss and other persistent alterations of hippocampal pyramidal cell dendrites in a model of early-onset epilepsy. J Neurosci. 1998 Oct 15; 18(20):8356-68.
    View in: PubMed
    Score: 0.085
  20. Local circuit abnormalities in chronically epileptic rats after intrahippocampal tetanus toxin injection in infancy. J Neurophysiol. 1998 Jan; 79(1):106-16.
    View in: PubMed
    Score: 0.081
  21. Activation of extracellular regulated kinase and mechanistic target of rapamycin pathway in focal cortical dysplasia. Neuropathology. 2016 Apr; 36(2):146-56.
    View in: PubMed
    Score: 0.069
  22. Catastrophic childhood epilepsy: a recent convergence of basic and clinical neuroscience. Sci Transl Med. 2014 Nov 12; 6(262):262ps13.
    View in: PubMed
    Score: 0.065
  23. Developmental plasticity and hippocampal epileptogenesis. Hippocampus. 1994 Jun; 4(3):266-9.
    View in: PubMed
    Score: 0.063
  24. Impact of seizures on developing dendrites: implications for intellectual developmental disabilities. Epilepsia. 2012 Jun; 53 Suppl 1:116-24.
    View in: PubMed
    Score: 0.055
  25. Calcium modulation of the N-methyl-D-aspartate (NMDA) response and electrographic seizures in immature hippocampus. Neurosci Lett. 1991 Mar 11; 124(1):92-6.
    View in: PubMed
    Score: 0.050
  26. Suppression of 4-aminopyridine-induced epileptogenesis by the GABAA agonist muscimol. Epilepsy Res. 1990 Jan-Feb; 5(1):8-17.
    View in: PubMed
    Score: 0.046
  27. Suppression of ictal-like activity by kynurenic acid does not correlate with its efficacy as an NMDA receptor antagonist. Epilepsy Res. 1988 Jul-Aug; 2(4):232-8.
    View in: PubMed
    Score: 0.042
  28. Extracellular K+ accumulation during penicillin-induced epileptogenesis in the CA3 region of immature rat hippocampus. Brain Res. 1986 Dec; 395(2):243-55.
    View in: PubMed
    Score: 0.037
  29. Models of pediatric epilepsies: strategies and opportunities. Epilepsia. 2006 Aug; 47(8):1407-14.
    View in: PubMed
    Score: 0.037
  30. Postsynaptic actions of baclofen associated with its antagonism of bicuculline-induced epileptogenesis in hippocampus. Cell Mol Neurobiol. 1984 Dec; 4(4):403-8.
    View in: PubMed
    Score: 0.033
  31. Penicillin-induced epileptogenesis in immature rat CA3 hippocampal pyramidal cells. Brain Res. 1984 Feb; 314(2):243-54.
    View in: PubMed
    Score: 0.031
  32. Postsynaptic contributions to hippocampal network hyperexcitability induced by chronic activity blockade in vivo. Eur J Neurosci. 2003 Oct; 18(7):1861-72.
    View in: PubMed
    Score: 0.030
  33. A role for sodium and chloride in kainic acid-induced beading of inhibitory interneuron dendrites. Neuroscience. 2000; 101(2):337-48.
    View in: PubMed
    Score: 0.023
  34. Carbamazepine suppresses synchronized afterdischarging in disinhibited immature rat hippocampus in vitro. Brain Res. 1987 Jan 06; 400(2):371-6.
    View in: PubMed
    Score: 0.009
Connection Strength

The connection strength for concepts is the sum of the scores for each matching publication.

Publication scores are based on many factors, including how long ago they were written and whether the person is a first or senior author.