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Group-specific discriminant analysis reveals statistically validated sex differences in lateralization of brain functional network (2404.05781v1)

Published 8 Apr 2024 in q-bio.NC and cs.LG

Abstract: Lateralization is a fundamental feature of the human brain, where sex differences have been observed. Conventional studies in neuroscience on sex-specific lateralization are typically conducted on univariate statistical comparisons between male and female groups. However, these analyses often lack effective validation of group specificity. Here, we formulate modeling sex differences in lateralization of functional networks as a dual-classification problem, consisting of first-order classification for left vs. right functional networks and second-order classification for male vs. female models. To capture sex-specific patterns, we develop the Group-Specific Discriminant Analysis (GSDA) for first-order classification. The evaluation on two public neuroimaging datasets demonstrates the efficacy of GSDA in learning sex-specific models from functional networks, achieving a significant improvement in group specificity over baseline methods. The major sex differences are in the strength of lateralization and the interactions within and between lobes. The GSDA-based method is generic in nature and can be adapted to other group-specific analyses such as handedness-specific or disease-specific analyses.

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References (68)
  1. Cortical language localization in left, dominant hemisphere: an electrical stimulation mapping investigation in 117 patients. \JournalTitleJournal of Neurosurgery 71, 316–326 (1989).
  2. Gazzaniga, M. S. Cerebral specialization and interhemispheric communication: does the corpus callosum enable the human condition? \JournalTitleBrain 123, 1293–1326 (2000).
  3. Corballis, M. C. The evolution of lateralized brain circuits. \JournalTitleFrontiers in Psychology 8, 1021 (2017).
  4. The anatomical basis of functional localization in the cortex. \JournalTitleNature Reviews Neuroscience 3, 606–616 (2002).
  5. Mapping brain asymmetry. \JournalTitleNature Reviews Neuroscience 4, 37–48 (2003).
  6. Clements, A. et al. Sex differences in cerebral laterality of language and visuospatial processing. \JournalTitleBrain and Language 98, 150–158 (2006).
  7. Laterality patterns of brain functional connectivity: gender effects. \JournalTitleCerebral Cortex 22, 1455–1462 (2012).
  8. Lateralization of resting state networks and relationship to age and gender. \JournalTitleNeuroImage 104, 310–325 (2015).
  9. Sex differences in the functional lateralization of emotion and decision making in the human brain. \JournalTitleJournal of Neuroscience Research 95, 270–278 (2017).
  10. Guadalupe, T. et al. Asymmetry within and around the human planum temporale is sexually dimorphic and influenced by genes involved in steroid hormone receptor activity. \JournalTitleCortex 62, 41–55 (2015).
  11. Sex differences in language asymmetry are age-dependent and small: A large-scale, consonant–vowel dichotic listening study with behavioral and fMRI data. \JournalTitleCortex 49, 1910–1921 (2013).
  12. Sex, age, and cognitive correlates of asymmetries in thickness of the cortical mantle across the life span. \JournalTitleJournal of Neuroscience 34, 6294–6302 (2014).
  13. Sex differences in handedness, asymmetry of the planum temporale and functional language lateralization. \JournalTitleBrain Research 1206, 76–88 (2008).
  14. Levy, J. Lateral specialization of the human brain, behavioral manifestations and possible evolutionary basis. \JournalTitleThe Biology of Behavior (1972).
  15. Levy, J. Lateral differences in the human brain in cognition and behavioral control. \JournalTitleCerebral Correlates of Conscious Experience (1978).
  16. Jansen, A. et al. The assessment of hemispheric lateralization in functional MRI—robustness and reproducibility. \JournalTitleNeuroImage 33, 204–217 (2006).
  17. Kinsbourne, M. Hemineglect and hemisphere rivalry. \JournalTitleAdv. Neurol. 18, 41–49 (1977).
  18. Fundamentals of Human Neuropsychology (Macmillan, 2009).
  19. Spontaneous fluctuations in brain activity observed with functional magnetic resonance imaging. \JournalTitleNature Reviews Neuroscience 8, 700–711 (2007).
  20. Logothetis, N. K. What we can do and what we cannot do with fMRI. \JournalTitleNature 453, 869–878 (2008).
  21. The human connectome: a structural description of the human brain. \JournalTitlePLoS Computational Biology 1, e42 (2005).
  22. Smith, S. M. et al. Temporally-independent functional modes of spontaneous brain activity. \JournalTitleProceedings of the National Academy of Sciences 109, 3131–3136 (2012).
  23. Finn, E. S. et al. Functional connectome fingerprinting: identifying individuals using patterns of brain connectivity. \JournalTitleNature Neuroscience 18, 1664–1671 (2015).
  24. Zuo, X.-N. et al. Growing together and growing apart: regional and sex differences in the lifespan developmental trajectories of functional homotopy. \JournalTitleJournal of Neuroscience 30, 15034–15043 (2010).
  25. Seghier, M. L. Laterality index in functional MRI: methodological issues. \JournalTitleMagnetic Resonance Imaging 26, 594–601 (2008).
  26. Liégeois, F. et al. A direct test for lateralization of language activation using fMRI: comparison with invasive assessments in children with epilepsy. \JournalTitleNeuroImage 17, 1861–1867 (2002).
  27. Friston, K. J. Functional and effective connectivity: a review. \JournalTitleBrain Connectivity 1, 13–36 (2011).
  28. Gender-specific effects of prenatal and adolescent exposure to tobacco smoke on auditory and visual attention. \JournalTitleNeuropsychopharmacology 32, 2453–2464 (2007).
  29. Schwarz, E. et al. Sex-specific serum biomarker patterns in adults with asperger’s syndrome. \JournalTitleMolecular Psychiatry 16, 1213–1220 (2011).
  30. Men fear other men most: gender specific brain activations in perceiving threat from dynamic faces and bodies–an fMRI study. \JournalTitleFrontiers in Psychology 2, 3 (2011).
  31. Ingalhalikar, M. et al. Sex differences in the structural connectome of the human brain. \JournalTitleProceedings of the National Academy of Sciences 111, 823–828 (2014).
  32. Individualized prediction of reading comprehension ability using gray matter volume. \JournalTitleCerebral Cortex 28, 1656–1672 (2018).
  33. Gene editing and gender-specific medicine: a challenge for dementia research. \JournalTitlePalgrave Communications 6, 1–6 (2020).
  34. Good, C. D. et al. Cerebral asymmetry and the effects of sex and handedness on brain structure: a voxel-based morphometric analysis of 465 normal adult human brains. \JournalTitleNeuroImage 14, 685–700 (2001).
  35. Smith, S. M. et al. Resting-state fMRI in the human connectome project. \JournalTitleNeuroImage 80, 144–168 (2013).
  36. Holmes, A. J. et al. Brain genomics superstruct project initial data release with structural, functional, and behavioral measures. \JournalTitleScientific Data 2, 1–16 (2015).
  37. Fan, L. et al. The human brainnetome atlas: a new brain atlas based on connectional architecture. \JournalTitleCerebral Cortex 26, 3508–3526 (2016).
  38. Diestel, R. Graph Theory (New York: Springer, 2000).
  39. Vapnik, V. The Nature of Statistical Learning Theory (Springer science & business media, 1999).
  40. Smith, D. V. et al. Characterizing individual differences in functional connectivity using dual-regression and seed-based approaches. \JournalTitleNeuroImage 95, 1–12 (2014).
  41. Functional connectivity predicts gender: Evidence for gender differences in resting brain connectivity. \JournalTitleHuman Brain Mapping 39, 1765–1776 (2018).
  42. Predicting biological gender and intelligence from fMRI via dynamic functional connectivity. \JournalTitleIEEE Trans. on Biomedical Engineering 68, 815–825 (2020).
  43. Kong, R. et al. Spatial topography of individual-specific cortical networks predicts human cognition, personality, and emotion. \JournalTitleCerebral Cortex 29, 2533–2551 (2019).
  44. Onitsuka, T. et al. Middle and inferior temporal gyrus gray matter volume abnormalities in chronic schizophrenia: an MRI study. \JournalTitleAmerican Journal of Psychiatry 161, 1603–1611 (2004).
  45. Differential contributions of the middle frontal gyrus functional connectivity to literacy and numeracy. \JournalTitleScientific Reports 7, 17548 (2017).
  46. Lynch, J. C. The functional organization of posterior parietal association cortex. \JournalTitleBehavioral and Brain Sciences 3, 485–499 (1980).
  47. Hyva, J. et al. Regional distribution of functions in parietal association area 7 of the monkey. \JournalTitleBrain Research 206, 287–303 (1981).
  48. Greenlee, J. D. et al. Functional connections within the human inferior frontal gyrus. \JournalTitleJournal of Comparative Neurology 503, 550–559 (2007).
  49. Insular cortex. \JournalTitleStatPearls (2021).
  50. Cognitive sex differences and hemispheric asymmetry: A critical review of 40 years of research. \JournalTitleLaterality: Asymmetries of Body, Brain and Cognition 24, 204–252 (2019).
  51. Duncan, J. The multiple-demand (md) system of the primate brain: mental programs for intelligent behaviour. \JournalTitleTrends in Cognitive Sciences 14, 172–179 (2010).
  52. Sex differences in lateralization revealed in the posterior language areas. \JournalTitleCerebral Cortex 10, 866–872 (2000).
  53. Activity flow over resting-state networks shapes cognitive task activations. \JournalTitleNature Neuroscience 19, 1718–1726 (2016).
  54. van Dokkum, L. E. et al. Resting state network plasticity related to picture naming in low-grade glioma patients before and after resection. \JournalTitleNeuroImage: Clinical 24, 102010 (2019).
  55. Laws, K. R. Sex differences in lexical size across semantic categories. \JournalTitlePersonality and Individual Differences 36, 23–32 (2004).
  56. Picture naming yields highly consistent cortical activation patterns: Test–retest reliability of magnetoencephalography recordings. \JournalTitleNeuroImage 227, 117651 (2021).
  57. Connectivity of the hippocampus and broca’s area during acquisition of a novel grammar. \JournalTitleNeuroImage 165, 1–10 (2018).
  58. Rapid communication: Sex differences in artificial grammar learning: Evidence for different strategies in men and women. \JournalTitleQuarterly Journal of Experimental Psychology 64, 417–424 (2011).
  59. Li, F. et al. Causal interactions with an insular-cortical network in mild traumatic brain injury. \JournalTitleEuropean Journal of Radiology 157, 110594 (2022).
  60. Vingerhoets, G. et al. Cerebral lateralization of praxis in right-and left-handedness: Same pattern, different strength. \JournalTitleHuman Brain Mapping 33, 763–777 (2012).
  61. Sex similarities and differences in pain-related periaqueductal gray connectivity. \JournalTitlePain 153, 444–454 (2012).
  62. Tuckute, G. et al. Frontal language areas do not emerge in the absence of temporal language areas: A case study of an individual born without a left temporal lobe. \JournalTitleNeuropsychologia 169, 108184 (2022).
  63. Corballis, M. C. Evolution of cerebral asymmetry. \JournalTitleProgress in Brain Research 250, 153–178 (2019).
  64. Survival with an asymmetrical brain: advantages and disadvantages of cerebral lateralization. \JournalTitleBehavioral and Brain Sciences (2005).
  65. Communication in neuronal networks. \JournalTitleScience 301, 1870–1874 (2003).
  66. Lennie, P. The cost of cortical computation. \JournalTitleCurrent Biology 13, 493–497 (2003).
  67. Energy efficient neural codes. \JournalTitleNeural Computation 8, 531–543 (1996).
  68. Time is of the essence: a conjecture that hemispheric specialization arises from interhemispheric conduction delay. \JournalTitleCerebral Cortex 4, 331–343 (1994).

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