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. 2019 May 9:10:425.
doi: 10.3389/fneur.2019.00425. eCollection 2019.

10Kin1day: A Bottom-Up Neuroimaging Initiative

Martijn P van den Heuvel  1   2 Lianne H Scholtens  1   2 Hannelore K van der Burgh  3 Federica Agosta  4 Clara Alloza  5   6 Celso Arango  6 Bonnie Auyeung  7 Simon Baron-Cohen  7 Silvia Basaia  4 Manon J N L Benders  8 Frauke Beyer  9 Linda Booij  10 Kees P J Braun  11 Geraldo Busatto Filho  12 Wiepke Cahn  2 Dara M Cannon  13 Tiffany M Chaim-Avancini  12 Sandra S M Chan  14 Eric Y H Chen  15 Benedicto Crespo-Facorro  16 Eveline A Crone  17 Udo Dannlowski  18 Sonja M C de Zwarte  2 Bruno Dietsche  19 Gary Donohoe  20 Stefan Du Plessis  21 Sarah Durston  2 Covadonga M Díaz-Caneja  6 Ana M Díaz-Zuluaga  22 Robin Emsley  21 Massimo Filippi  4 Thomas Frodl  23 Martin Gorges  24 Beata Graff  25 Dominik Grotegerd  18 Dariusz Gąsecki  26 Julie M Hall  27 Laurena Holleran  20 Rosemary Holt  7 Helene J Hopman  28 Andreas Jansen  29 Joost Janssen  6 Krzysztof Jodzio  30 Lutz Jäncke  31 Vasiliy G Kaleda  32 Jan Kassubek  24 Shahrzad Kharabian Masouleh  33 Tilo Kircher  29 Martijn G J C Koevoets  2 Vladimir S Kostic  34 Axel Krug  29 Stephen M Lawrie  5 Irina S Lebedeva  35 Edwin H M Lee  15 Tristram A Lett  36 Simon J G Lewis  27 Franziskus Liem  37 Michael V Lombardo  7 Carlos Lopez-Jaramillo  38 Daniel S Margulies  39 Sebastian Markett  40 Paulo Marques  41 Ignacio Martínez-Zalacaín  42 Colm McDonald  13 Andrew M McIntosh  5 Genevieve McPhilemy  13 Susanne L Meinert  18 José M Menchón  42 Christian Montag  43 Pedro S Moreira  41 Pedro Morgado  41 David O Mothersill  20 Susan Mérillat  37 Hans-Peter Müller  24 Leila Nabulsi  13 Pablo Najt  13 Krzysztof Narkiewicz  25 Patrycja Naumczyk  30 Bob Oranje  2 Victor Ortiz-Garcia de la Foz  44 Jiska S Peper  17 Julian A Pineda  45 Paul E Rasser  46 Ronny Redlich  18 Jonathan Repple  18 Martin Reuter  40 Pedro G P Rosa  12 Amber N V Ruigrok  7 Agnieszka Sabisz  47 Ulrich Schall  46 Soraya Seedat  21 Mauricio H Serpa  48 Stavros Skouras  49 Carles Soriano-Mas  50 Nuno Sousa  41 Edyta Szurowska  47 Alexander S Tomyshev  35 Diana Tordesillas-Gutierrez  51 Sofie L Valk  52 Leonard H van den Berg  3 Theo G M van Erp  53 Neeltje E M van Haren  2   54 Judith M C van Leeuwen  55 Arno Villringer  56 Christiaan H Vinkers  57 Christian Vollmar  58 Lea Waller  59 Henrik Walter  60 Heather C Whalley  5 Marta Witkowska  30 A Veronica Witte  9 Marcus V Zanetti  61   62 Rui Zhang  63 Siemon C de Lange  1   2
Affiliations

10Kin1day: A Bottom-Up Neuroimaging Initiative

Martijn P van den Heuvel et al. Front Neurol. .

Abstract

We organized 10Kin1day, a pop-up scientific event with the goal to bring together neuroimaging groups from around the world to jointly analyze 10,000+ existing MRI connectivity datasets during a 3-day workshop. In this report, we describe the motivation and principles of 10Kin1day, together with a public release of 8,000+ MRI connectome maps of the human brain.

Keywords: MRI; brain; connectome analysis; diffusion weighted MRI; network.

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Figures

Figure 1
Figure 1
(A) For each dataset, DWI tractography was combined with T1-based parcellation of cerebral brain regions to reconstruct a brain network. (B) Group-averaged (group threshold 33%) FA matrix of the 10K dataset. (C) High overlap (r = 0.93) between group-averaged FA values as derived from high-resolution HCP data and the 10K dataset. (D) Relationship between age and average inverse mean diffusivity (MD, sec/mm2) across the 10K dataset. Colors indicate the different included datasets. Insert shows a pie diagram of the size of included datasets, color coded to set participation. One dataset (set_634413) was excluded from this plot, showing (across the age span) deviating FA (lower) and MD (higher) values than the other datasets (see methods). Due to the high total n, excluding this dataset did not change the relationship with age. (E) Relationship between age and average cortical thickness (CT). (F) Age distribution of the presented data as in (D,E). T1, anatomical MRI; DWI, diffusion weighted imaging; CT, cortical thickness.

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