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akaturk Akademik ölçüm

Makale detayı · 2019

Correlations between genomic subgroup and clinical features in a cohort of more than 3000 meningiomas

Dergi

Journal of Neurosurgery

ISSN 0022-3085

YÖKSİS OpenAlex SJR Q1 JCR Q1 Atıf 185 Üst %10 Yüzdelik 98.8% FWCI 9.84
Yıl
2019
Tür
article

Veri kaynağı ayrımı

  • YÖKSİS YÖKSİS makale kaydı
  • YÖKSİS dergi adı JOURNAL OF NEUROSURGERY
  • Katalog eşleşmesi (ISSN) Journal of Neurosurgery
  • OpenAlex OpenAlex zenginleştirmesi (özet, atıf, konular)

Özet

OpenAlex · İngilizce

OBJECTIVE: Recent large-cohort sequencing studies have investigated the genomic landscape of meningiomas, identifying somatic coding alterations in NF2, SMARCB1, SMARCE1, TRAF7, KLF4, POLR2A, BAP1, and members of the PI3K and Hedgehog signaling pathways. Initial associations between clinical features and genomic subgroups have been described, including location, grade, and histology. However, further investigation using an expanded collection of samples is needed to confirm previous findings, as well as elucidate relationships not evident in smaller discovery cohorts. METHODS: Targeted sequencing of established meningioma driver genes was performed on a multiinstitution cohort of 3016 meningiomas for classification into mutually exclusive subgroups. Relevant clinical information was collected for all available cases and correlated with genomic subgroup. Nominal variables were analyzed using Fisher's exact tests, while ordinal and continuous variables were assessed using Kruskal-Wallis and 1-way ANOVA tests, respectively. Machine-learning approaches were used to predict genomic subgroup based on noninvasive clinical features. RESULTS: Genomic subgroups were strongly associated with tumor locations, including correlation of HH tumors with midline location, and non-NF2 tumors in anterior skull base regions. NF2 meningiomas were significantly enriched in male patients, while KLF4 and POLR2A mutations were associated with female sex. Among histologies, the results confirmed previously identified relationships, and observed enrichment of microcystic features among "mutation unknown" samples. Additionally, KLF4-mutant meningiomas were associated with larger peritumoral brain edema, while SMARCB1 cases exhibited elevated Ki-67 index. Machine-learning methods revealed that observable, noninvasive patient features were largely predictive of each tumor's underlying driver mutation. CONCLUSIONS: Using a rigorous and comprehensive approach, this study expands previously described correlations between genomic drivers and clinical features, enhancing our understanding of meningioma pathogenesis, and laying further groundwork for the use of targeted therapies. Importantly, the authors found that noninvasive patient variables exhibited a moderate predictive value of underlying genomic subgroup, which could improve with additional training data. With continued development, this framework may enable selection of appropriate precision medications without the need for invasive sampling procedures.

Konular

Atıflar

OpenAlex cited_by_count. WoS veya Scopus atıf sayısı değildir; o kaynaklar için ayrı kolon yoktur.

185 atıf

OpenAlex cited_by_count (önbellek / veritabanı)

Yazarlar

  1. Mark W Youngblood
  2. Daniel Duran
  3. Julio D Montejo
  4. Chang Li
  5. Sacit Bulent Omay
  6. KORAY ÖZDUMAN
  7. Amar H Sheth
  8. Amy Y Zhao
  9. Evgeniya Tyrtova
  10. Danielle F Miyagishima
  11. Elena I Fomchenko
  12. Christopher S Hong
  13. Victoria E Clark
  14. Maximilien Riche
  15. Matthieu Peyre
  16. Julien Boetto
  17. Sadaf Sohrabi
  18. Sarah Koljaka
  19. Jacob F Baranoski
  20. James Knight
  21. Hongda Zhu
  22. MUSTAFA NECMETTİN PAMİR
  23. TİMUÇİN AVŞAR BAHÇEŞEHİR ÜNİVERSİTESİ
  24. TÜRKER KILIÇ
  25. Johannes Schramm
  26. Marco Timmer
  27. Roland Goldbrunner
  28. Ye Gong
  29. YAŞAR BAYRİ
  30. Nduka Amankulor
  31. Ronald L Hamilton
  32. Kaya Bilguvar
  33. Irina Tikhonova
  34. Patrick R Tomak
  35. Anita Huttner
  36. Matthias Simon
  37. Boris Krischek
  38. Michel Kalamarides
  39. E Zeynep Erson-Omay
  40. Jennifer Moliterno
  41. Murat Günel