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Journal Abstract Search
117 related items for PubMed ID: 34000395
1. Modeling sparse longitudinal data in early neurodevelopment. Chen Y, Dubey P, Müller HG, Bruchhage M, Wang JL, Deoni S. Neuroimage; 2021 Aug 15; 237():118079. PubMed ID: 34000395 [Abstract] [Full Text] [Related]
3. Trajectories of brain volumes in young children are associated with maternal education. Zhu C, Chen Y, Müller HG, Wang JL, O'Muircheartaigh J, Bruchhage M, Deoni S. Hum Brain Mapp; 2023 Jun 01; 44(8):3168-3179. PubMed ID: 36896867 [Abstract] [Full Text] [Related]
4. Age-dynamic networks and functional correlation for early white matter myelination. Dai X, Müller HG, Wang JL, Deoni SCL. Brain Struct Funct; 2019 Mar 01; 224(2):535-551. PubMed ID: 30392094 [Abstract] [Full Text] [Related]
6. White matter development and early cognition in babies and toddlers. O'Muircheartaigh J, Dean DC, Ginestet CE, Walker L, Waskiewicz N, Lehman K, Dirks H, Piryatinsky I, Deoni SC. Hum Brain Mapp; 2014 Sep 01; 35(9):4475-87. PubMed ID: 24578096 [Abstract] [Full Text] [Related]
7. Developmental brain trajectories in children with ADHD and controls: a longitudinal neuroimaging study. Silk TJ, Genc S, Anderson V, Efron D, Hazell P, Nicholson JM, Kean M, Malpas CB, Sciberras E. BMC Psychiatry; 2016 Mar 11; 16():59. PubMed ID: 26969310 [Abstract] [Full Text] [Related]
8. Longitudinal study of neonatal brain tissue volumes in preterm infants and their ability to predict neurodevelopmental outcome. Gui L, Loukas S, Lazeyras F, Hüppi PS, Meskaldji DE, Borradori Tolsa C. Neuroimage; 2019 Jan 15; 185():728-741. PubMed ID: 29908311 [Abstract] [Full Text] [Related]
9. White matter maturation profiles through early childhood predict general cognitive ability. Deoni SC, O'Muircheartaigh J, Elison JT, Walker L, Doernberg E, Waskiewicz N, Dirks H, Piryatinsky I, Dean DC, Jumbe NL. Brain Struct Funct; 2016 Mar 15; 221(2):1189-203. PubMed ID: 25432771 [Abstract] [Full Text] [Related]
10. Longitudinal infant fNIRS channel-space analyses are robust to variability parameters at the group-level: An image reconstruction investigation. Collins-Jones LH, Cooper RJ, Bulgarelli C, Blasi A, Katus L, McCann S, Mason L, Mbye E, Touray E, Ceesay M, Moore SE, Lloyd-Fox S, Elwell CE, BRIGHT Study Team. Neuroimage; 2021 Aug 15; 237():118068. PubMed ID: 33915275 [Abstract] [Full Text] [Related]
11. MR fingerprinting enables quantitative measures of brain tissue relaxation times and myelin water fraction in the first five years of life. Chen Y, Chen MH, Baluyot KR, Potts TM, Jimenez J, Lin W, UNC/UMN Baby Connectome Project Consortium. Neuroimage; 2019 Feb 01; 186():782-793. PubMed ID: 30472371 [Abstract] [Full Text] [Related]
12. Multi-task prediction of infant cognitive scores from longitudinal incomplete neuroimaging data. Adeli E, Meng Y, Li G, Lin W, Shen D. Neuroimage; 2019 Jan 15; 185():783-792. PubMed ID: 29709627 [Abstract] [Full Text] [Related]
13. Neuroimaging young children and associations with neurocognitive development in a South African birth cohort study. Wedderburn CJ, Subramoney S, Yeung S, Fouche JP, Joshi SH, Narr KL, Rehman AM, Roos A, Ipser J, Robertson FC, Groenewold NA, Gibb DM, Zar HJ, Stein DJ, Donald KA. Neuroimage; 2020 Oct 01; 219():116846. PubMed ID: 32304884 [Abstract] [Full Text] [Related]
14. Multi-Regression based supervised sample selection for predicting baby connectome evolution trajectory from neonatal timepoint. Ghribi O, Li G, Lin W, Shen D, Rekik I. Med Image Anal; 2021 Feb 01; 68():101853. PubMed ID: 33264713 [Abstract] [Full Text] [Related]
15. Postnatal polyunsaturated fatty acids associated with larger preterm brain tissue volumes and better outcomes. Kamino D, Studholme C, Liu M, Chau V, Miller SP, Synnes A, Rogers EE, Barkovich AJ, Ferriero DM, Brant R, Tam EWY. Pediatr Res; 2018 Jan 01; 83(1-1):93-101. PubMed ID: 28915231 [Abstract] [Full Text] [Related]
16. Exposure to Maternal Depressive Symptoms in Fetal Life or Childhood and Offspring Brain Development: A Population-Based Imaging Study. Zou R, Tiemeier H, van der Ende J, Verhulst FC, Muetzel RL, White T, Hillegers M, El Marroun H. Am J Psychiatry; 2019 Sep 01; 176(9):702-710. PubMed ID: 31055967 [Abstract] [Full Text] [Related]
17. Normalization of similarity-based individual brain networks from gray matter MRI and its association with neurodevelopment in infants with intrauterine growth restriction. Batalle D, Muñoz-Moreno E, Figueras F, Bargallo N, Eixarch E, Gratacos E. Neuroimage; 2013 Dec 01; 83():901-11. PubMed ID: 23886985 [Abstract] [Full Text] [Related]
18. The Developmental Course of Sleep Disturbances Across Childhood Relates to Brain Morphology at Age 7: The Generation R Study. Kocevska D, Muetzel RL, Luik AI, Luijk MP, Jaddoe VW, Verhulst FC, White T, Tiemeier H. Sleep; 2017 Jan 01; 40(1):. PubMed ID: 28364462 [Abstract] [Full Text] [Related]
19. Maturational trajectories of white matter microstructure underlying the right presupplementary motor area reflect individual improvements in motor response cancellation in children and adolescents. Madsen KS, Johansen LB, Thompson WK, Siebner HR, Jernigan TL, Baaré WFC. Neuroimage; 2020 Oct 15; 220():117105. PubMed ID: 32615252 [Abstract] [Full Text] [Related]
20. The Brain Imaging for Global Health (BRIGHT) Project: Longitudinal cohort study protocol. Lloyd-Fox S, McCann S, Milosavljevic B, Katus L, Blasi A, Bulgarelli C, Crespo-Llado M, Ghillia G, Fadera T, Mbye E, Mason L, Njai F, Njie O, Perapoch-Amado M, Rozhko M, Sosseh F, Saidykhan M, Touray E, Moore SE, Elwell CE, BRIGHT Project team. Gates Open Res; 2023 Oct 15; 7():126. PubMed ID: 39372355 [Abstract] [Full Text] [Related] Page: [Next] [New Search]