Skip to main content
Top
Published in: Acta Neuropathologica 6/2015

Open Access 01-06-2015 | Review

Pilocytic astrocytoma: pathology, molecular mechanisms and markers

Authors: V. Peter Collins, David T. W. Jones, Caterina Giannini

Published in: Acta Neuropathologica | Issue 6/2015

Login to get access

Abstract

Pilocytic astrocytomas (PAs) were recognized as a discrete clinical entity over 70 years ago. They are relatively benign (WHO grade I) and have, as a group, a 10-year survival of over 90 %. Many require merely surgical removal and only very infrequently do they progress to more malignant gliomas. While most show classical morphology, they may present a spectrum of morphological patterns, and there are difficult cases that show similarities to other gliomas, some of which are malignant and require aggressive treatment. Until recently, almost nothing was known about the molecular mechanisms involved in their development. The use of high-throughput sequencing techniques interrogating the whole genome has shown that single abnormalities of the mitogen-activating protein kinase (MAPK) pathway are exclusively found in almost all cases, indicating that PA represents a one-pathway disease. The most common mechanism is a tandem duplication of a ≈2 Mb-fragment of #7q, giving rise to a fusion between two genes, resulting in a transforming fusion protein, consisting of the N-terminus of KIAA1549 and the kinase domain of BRAF. Additional infrequent fusion partners have been identified, along with other abnormalities of the MAP-K pathway, affecting tyrosine kinase growth factor receptors at the cell surface (e.g., FGFR1) as well as BRAF V600E, KRAS, and NF1 mutations among others. However, while the KIAA1549-BRAF fusion occurs in all areas, the incidence of the various other mutations identified differs in PAs that develop in different regions of the brain. Unfortunately, from a diagnostic standpoint, almost all mutations found have been reported in other brain tumor types, although some retain considerable utility. These molecular abnormalities will be reviewed, and the difficulties in their potential use in supporting a diagnosis of PA, when the histopathological findings are equivocal or in the choice of individualized therapy, will be discussed.
Literature
2.
go back to reference Antonelli M, Badiali M, Moi L, Buttarelli FR, Baldi C, Massimino M et al (2014) KIAA1549:BRAF fusion gene in pediatric brain tumors of various histogenesis. Pediatr Blood Cancer. doi:10.1002/pbc.25272 PubMed Antonelli M, Badiali M, Moi L, Buttarelli FR, Baldi C, Massimino M et al (2014) KIAA1549:BRAF fusion gene in pediatric brain tumors of various histogenesis. Pediatr Blood Cancer. doi:10.​1002/​pbc.​25272 PubMed
6.
go back to reference Bohner G, Masuhr F, Distl R, Katchanov J, Klingebiel R, Zschenderlein R et al (2005) Pilocytic astrocytoma presenting as primary diffuse leptomeningeal gliomatosis: report of a unique case and review of the literature. Acta Neuropathol 110:306–311. doi:10.1007/s00401-005-1051-3 CrossRefPubMed Bohner G, Masuhr F, Distl R, Katchanov J, Klingebiel R, Zschenderlein R et al (2005) Pilocytic astrocytoma presenting as primary diffuse leptomeningeal gliomatosis: report of a unique case and review of the literature. Acta Neuropathol 110:306–311. doi:10.​1007/​s00401-005-1051-3 CrossRefPubMed
7.
go back to reference Bolcekova A, Nemethova M, Zatkova A, Hlinkova K, Pozgayova S, Hlavata A et al (2013) Clustering of mutations in the 5′ tertile of the NF1 gene in Slovakia patients with optic pathway glioma. Neoplasma 60:655–665. doi:10.4149/neo_2013_084 CrossRefPubMed Bolcekova A, Nemethova M, Zatkova A, Hlinkova K, Pozgayova S, Hlavata A et al (2013) Clustering of mutations in the 5′ tertile of the NF1 gene in Slovakia patients with optic pathway glioma. Neoplasma 60:655–665. doi:10.​4149/​neo_​2013_​084 CrossRefPubMed
8.
go back to reference Bucy PC, Gustafson WA (1939) Structure, nature and classification of cerebellar astrocytomas. Amer J Cancer 35:327 Bucy PC, Gustafson WA (1939) Structure, nature and classification of cerebellar astrocytomas. Amer J Cancer 35:327
10.
go back to reference Capper D, Preusser M, Habel A, Sahm F, Ackermann U, Schindler G et al (2011) Assessment of BRAF V600E mutation status by immunohistochemistry with a mutation-specific monoclonal antibody. Acta Neuropathol 122:11–19. doi:10.1007/s00401-011-0841-z CrossRefPubMed Capper D, Preusser M, Habel A, Sahm F, Ackermann U, Schindler G et al (2011) Assessment of BRAF V600E mutation status by immunohistochemistry with a mutation-specific monoclonal antibody. Acta Neuropathol 122:11–19. doi:10.​1007/​s00401-011-0841-z CrossRefPubMed
11.
go back to reference Ceppa EP, Bouffet E, Griebel R, Robinson C, Tihan T (2007) The pilomyxoid astrocytoma and its relationship to pilocytic astrocytoma: report of a case and a critical review of the entity. J Neurooncol 81:191–196. doi:10.1007/s11060-006-9216-z CrossRefPubMed Ceppa EP, Bouffet E, Griebel R, Robinson C, Tihan T (2007) The pilomyxoid astrocytoma and its relationship to pilocytic astrocytoma: report of a case and a critical review of the entity. J Neurooncol 81:191–196. doi:10.​1007/​s11060-006-9216-z CrossRefPubMed
12.
go back to reference Chappe C, Padovani L, Scavarda D, Forest F, Nanni-Metellus I, Loundou A et al (2013) Dysembryoplastic neuroepithelial tumors share with pleomorphic xanthoastrocytomas and gangliogliomas BRAF(V600E) mutation and expression. Brain Pathol 23:574–583. doi:10.1111/bpa.12048 CrossRefPubMed Chappe C, Padovani L, Scavarda D, Forest F, Nanni-Metellus I, Loundou A et al (2013) Dysembryoplastic neuroepithelial tumors share with pleomorphic xanthoastrocytomas and gangliogliomas BRAF(V600E) mutation and expression. Brain Pathol 23:574–583. doi:10.​1111/​bpa.​12048 CrossRefPubMed
13.
go back to reference Cin H, Meyer C, Herr R, Janzarik WG, Lambert S, Jones DT et al (2011) Oncogenic FAM131B-BRAF fusion resulting from 7q34 deletion comprises an alternative mechanism of MAPK pathway activation in pilocytic astrocytoma. Acta Neuropathol 121:763–774. doi:10.1007/s00401-011-0817-z CrossRefPubMed Cin H, Meyer C, Herr R, Janzarik WG, Lambert S, Jones DT et al (2011) Oncogenic FAM131B-BRAF fusion resulting from 7q34 deletion comprises an alternative mechanism of MAPK pathway activation in pilocytic astrocytoma. Acta Neuropathol 121:763–774. doi:10.​1007/​s00401-011-0817-z CrossRefPubMed
14.
go back to reference Colin C, Padovani L, Chappe C, Mercurio S, Scavarda D, Loundou A et al (2013) Outcome analysis of childhood pilocytic astrocytomas: a retrospective study of 148 cases at a single institution. Neuropathol Appl Neurobiol 39:693–705. doi:10.1111/nan.12013 CrossRefPubMed Colin C, Padovani L, Chappe C, Mercurio S, Scavarda D, Loundou A et al (2013) Outcome analysis of childhood pilocytic astrocytomas: a retrospective study of 148 cases at a single institution. Neuropathol Appl Neurobiol 39:693–705. doi:10.​1111/​nan.​12013 CrossRefPubMed
15.
go back to reference Daumas-Duport C, Scheithauer B, O’Fallon J, Kelly P (1988) Grading of astrocytomas. A simple and reproducible method. Cancer 62:2152–2165 Daumas-Duport C, Scheithauer B, O’Fallon J, Kelly P (1988) Grading of astrocytomas. A simple and reproducible method. Cancer 62:2152–2165
18.
go back to reference Elvidge AR, Penfield W, Cone W (1939) Gliomas of the Central Nervous System (a study of 210 verfified cases). Res Publ Ass Nerv Ment Dis 16:107 Elvidge AR, Penfield W, Cone W (1939) Gliomas of the Central Nervous System (a study of 210 verfified cases). Res Publ Ass Nerv Ment Dis 16:107
20.
go back to reference Fisher PG, Breiter SN, Carson BS, Wharam MD, Williams JA, Weingart JD et al (2000) A clinicopathologic reappraisal of brain stem tumor classification. Identification of pilocystic astrocytoma and fibrillary astrocytoma as distinct entities. Cancer 89:1569–1576CrossRefPubMed Fisher PG, Breiter SN, Carson BS, Wharam MD, Williams JA, Weingart JD et al (2000) A clinicopathologic reappraisal of brain stem tumor classification. Identification of pilocystic astrocytoma and fibrillary astrocytoma as distinct entities. Cancer 89:1569–1576CrossRefPubMed
21.
go back to reference Forshew T, Tatevossian RG, Lawson AR, Ma J, Neale G, Ogunkolade BW et al (2009) Activation of the ERK/MAPK pathway: a signature genetic defect in posterior fossa pilocytic astrocytomas. J Pathol 218:172–181. doi:10.1002/path.2558 CrossRefPubMed Forshew T, Tatevossian RG, Lawson AR, Ma J, Neale G, Ogunkolade BW et al (2009) Activation of the ERK/MAPK pathway: a signature genetic defect in posterior fossa pilocytic astrocytomas. J Pathol 218:172–181. doi:10.​1002/​path.​2558 CrossRefPubMed
24.
go back to reference Giannini C, Scheithauer BW, Burger PC, Christensen MR, Wollan PC, Sebo TJ et al (1999) Cellular proliferation in pilocytic and diffuse astrocytomas. J Neuropathol Exp Neurol 58:46–53CrossRefPubMed Giannini C, Scheithauer BW, Burger PC, Christensen MR, Wollan PC, Sebo TJ et al (1999) Cellular proliferation in pilocytic and diffuse astrocytomas. J Neuropathol Exp Neurol 58:46–53CrossRefPubMed
27.
go back to reference Ida CM, Rodriguez FJ, Burger PC, Caron AA, Jenkins SM, Spears GM et al (2014) Pleomorphic Xanthoastrocytoma: natural History and Long-term Follow-up. Brain Pathol. doi:10.1111/bpa.12217 PubMed Ida CM, Rodriguez FJ, Burger PC, Caron AA, Jenkins SM, Spears GM et al (2014) Pleomorphic Xanthoastrocytoma: natural History and Long-term Follow-up. Brain Pathol. doi:10.​1111/​bpa.​12217 PubMed
28.
go back to reference Ilgren EB, Stiller CA (1987) Cerebellar astrocytomas. Part II. Pathologic features indicative of malignancy. Clin Neuropathol 6:201–214PubMed Ilgren EB, Stiller CA (1987) Cerebellar astrocytomas. Part II. Pathologic features indicative of malignancy. Clin Neuropathol 6:201–214PubMed
35.
go back to reference Jones DT, Kocialkowski S, Liu L, Pearson DM, Ichimura K, Collins VP (2009) Oncogenic RAF1 rearrangement and a novel BRAF mutation as alternatives to KIAA1549:BRAF fusion in activating the MAPK pathway in pilocytic astrocytoma. Oncogene 28:2119–2123. doi:10.1038/onc.2009.73 CrossRefPubMedCentralPubMed Jones DT, Kocialkowski S, Liu L, Pearson DM, Ichimura K, Collins VP (2009) Oncogenic RAF1 rearrangement and a novel BRAF mutation as alternatives to KIAA1549:BRAF fusion in activating the MAPK pathway in pilocytic astrocytoma. Oncogene 28:2119–2123. doi:10.​1038/​onc.​2009.​73 CrossRefPubMedCentralPubMed
36.
go back to reference Katsetos CD, Krishna L, Friedberg E, Reidy J, Karkavelas G, Savory J (1994) Lobar pilocytic astrocytomas of the cerebral hemispheres: II. Pathobiology–morphogenesis of the eosinophilic granular bodies. Clin Neuropathol 13:306–314PubMed Katsetos CD, Krishna L, Friedberg E, Reidy J, Karkavelas G, Savory J (1994) Lobar pilocytic astrocytomas of the cerebral hemispheres: II. Pathobiology–morphogenesis of the eosinophilic granular bodies. Clin Neuropathol 13:306–314PubMed
38.
go back to reference Lambert SR, Witt H, Hovestadt V, Zucknick M, Kool M, Pearson DM et al (2013) Differential expression and methylation of brain developmental genes define location-specific subsets of pilocytic astrocytoma. Acta Neuropathol 126:291–301. doi:10.1007/s00401-013-1124-7 CrossRefPubMed Lambert SR, Witt H, Hovestadt V, Zucknick M, Kool M, Pearson DM et al (2013) Differential expression and methylation of brain developmental genes define location-specific subsets of pilocytic astrocytoma. Acta Neuropathol 126:291–301. doi:10.​1007/​s00401-013-1124-7 CrossRefPubMed
39.
go back to reference Lewis RA, Gerson LP, Axelson KA, Riccardi VM, Whitford RP (1984) von Recklinghausen neurofibromatosis. II. Incidence of optic gliomata. Ophthalmology 91:929–935CrossRefPubMed Lewis RA, Gerson LP, Axelson KA, Riccardi VM, Whitford RP (1984) von Recklinghausen neurofibromatosis. II. Incidence of optic gliomata. Ophthalmology 91:929–935CrossRefPubMed
40.
go back to reference Listernick R, Charrow J, Gutmann DH (1999) Intracranial gliomas in neurofibromatosis type 1. Am J Med Genet 89:38–44CrossRefPubMed Listernick R, Charrow J, Gutmann DH (1999) Intracranial gliomas in neurofibromatosis type 1. Am J Med Genet 89:38–44CrossRefPubMed
42.
go back to reference Louis DN, Ohgaki H, Wiestler OD, Cavenee WK (2007) Tumours of the central nervous system. IARC, Lyon Louis DN, Ohgaki H, Wiestler OD, Cavenee WK (2007) Tumours of the central nervous system. IARC, Lyon
43.
go back to reference Louis DN, Perry A, Burger P, Ellison DW, Reifenberger G, von Deimling A et al (2014) International Society Of Neuropathology-Haarlem consensus guidelines for nervous system tumor classification and grading. Brain Pathol 24:429–435. doi:10.1111/bpa.12171 CrossRefPubMed Louis DN, Perry A, Burger P, Ellison DW, Reifenberger G, von Deimling A et al (2014) International Society Of Neuropathology-Haarlem consensus guidelines for nervous system tumor classification and grading. Brain Pathol 24:429–435. doi:10.​1111/​bpa.​12171 CrossRefPubMed
46.
47.
go back to reference Ohgaki H, Kleihues P (2005) Population-based studies on incidence, survival rates, and genetic alterations in astrocytic and oligodendroglial gliomas. J Neuropathol Exp Neurol 64:479–489PubMed Ohgaki H, Kleihues P (2005) Population-based studies on incidence, survival rates, and genetic alterations in astrocytic and oligodendroglial gliomas. J Neuropathol Exp Neurol 64:479–489PubMed
48.
go back to reference Ostrom QT, Gittleman H, Liao P, Rouse C, Chen Y, Dowling J et al (2014) CBTRUS statistical report: primary brain and central nervous system tumors diagnosed in the United States in 2007–2011. Neuro Oncol 16(Suppl 4):1–63. doi:10.1093/neuonc/nou223 CrossRef Ostrom QT, Gittleman H, Liao P, Rouse C, Chen Y, Dowling J et al (2014) CBTRUS statistical report: primary brain and central nervous system tumors diagnosed in the United States in 2007–2011. Neuro Oncol 16(Suppl 4):1–63. doi:10.​1093/​neuonc/​nou223 CrossRef
54.
go back to reference Scheithauer BW, Hawkins C, Tihan T, VandenBerg SR, Burger PC (2007) Pilocytic Astrocytoma. In: Louis DN, Ohagaki H, Wiestler OD, Cavenee WK (eds) WHO Classification of tumours of the central nervous system. International Agency for Research on Cancer, Lyon, pp 14–21 Scheithauer BW, Hawkins C, Tihan T, VandenBerg SR, Burger PC (2007) Pilocytic Astrocytoma. In: Louis DN, Ohagaki H, Wiestler OD, Cavenee WK (eds) WHO Classification of tumours of the central nervous system. International Agency for Research on Cancer, Lyon, pp 14–21
56.
go back to reference Schindler G, Capper D, Meyer J, Janzarik W, Omran H, Herold-Mende C et al (2011) Analysis of BRAF V600E mutation in 1,320 nervous system tumors reveals high mutation frequencies in pleomorphic xanthoastrocytoma, ganglioglioma and extra-cerebellar pilocytic astrocytoma. Acta Neuropathol 121:397–405. doi:10.1007/s00401-011-0802-6 CrossRefPubMed Schindler G, Capper D, Meyer J, Janzarik W, Omran H, Herold-Mende C et al (2011) Analysis of BRAF V600E mutation in 1,320 nervous system tumors reveals high mutation frequencies in pleomorphic xanthoastrocytoma, ganglioglioma and extra-cerebellar pilocytic astrocytoma. Acta Neuropathol 121:397–405. doi:10.​1007/​s00401-011-0802-6 CrossRefPubMed
57.
go back to reference Sharif S, Upadhyaya M, Ferner R, Majounie E, Shenton A, Baser M et al (2011) A molecular analysis of individuals with neurofibromatosis type 1 (NF1) and optic pathway gliomas (OPGs), and an assessment of genotype-phenotype correlations. J Med Genet 48:256–260. doi:10.1136/jmg.2010.081760 CrossRefPubMed Sharif S, Upadhyaya M, Ferner R, Majounie E, Shenton A, Baser M et al (2011) A molecular analysis of individuals with neurofibromatosis type 1 (NF1) and optic pathway gliomas (OPGs), and an assessment of genotype-phenotype correlations. J Med Genet 48:256–260. doi:10.​1136/​jmg.​2010.​081760 CrossRefPubMed
60.
62.
go back to reference Tchoghandjian A, Fernandez C, Colin C, El Ayachi I, Voutsinos-Porche B, Fina F et al (2009) Pilocytic astrocytoma of the optic pathway: a tumour deriving from radial glia cells with a specific gene signature. Brain 132:1523–1535. doi:10.1093/brain/awp048 CrossRefPubMed Tchoghandjian A, Fernandez C, Colin C, El Ayachi I, Voutsinos-Porche B, Fina F et al (2009) Pilocytic astrocytoma of the optic pathway: a tumour deriving from radial glia cells with a specific gene signature. Brain 132:1523–1535. doi:10.​1093/​brain/​awp048 CrossRefPubMed
63.
go back to reference Tihan T, Fisher PG, Kepner JL, Godfraind C, McComb RD, Goldthwaite PT et al (1999) Pediatric astrocytomas with monomorphous pilomyxoid features and a less favorable outcome. J Neuropathol Exp Neurol 58:1061–1068CrossRefPubMed Tihan T, Fisher PG, Kepner JL, Godfraind C, McComb RD, Goldthwaite PT et al (1999) Pediatric astrocytomas with monomorphous pilomyxoid features and a less favorable outcome. J Neuropathol Exp Neurol 58:1061–1068CrossRefPubMed
66.
go back to reference Wu J, Dombi E, Jousma E, Scott Dunn R, Lindquist D, Schnell BM et al (2012) Preclincial testing of sorafenib and RAD001 in the Nf(flox/flox);DhhCre mouse model of plexiform neurofibroma using magnetic resonance imaging. Pediatr Blood Cancer 58:173–180. doi:10.1002/pbc.23015 CrossRefPubMedCentralPubMed Wu J, Dombi E, Jousma E, Scott Dunn R, Lindquist D, Schnell BM et al (2012) Preclincial testing of sorafenib and RAD001 in the Nf(flox/flox);DhhCre mouse model of plexiform neurofibroma using magnetic resonance imaging. Pediatr Blood Cancer 58:173–180. doi:10.​1002/​pbc.​23015 CrossRefPubMedCentralPubMed
Metadata
Title
Pilocytic astrocytoma: pathology, molecular mechanisms and markers
Authors
V. Peter Collins
David T. W. Jones
Caterina Giannini
Publication date
01-06-2015
Publisher
Springer Berlin Heidelberg
Published in
Acta Neuropathologica / Issue 6/2015
Print ISSN: 0001-6322
Electronic ISSN: 1432-0533
DOI
https://doi.org/10.1007/s00401-015-1410-7

Other articles of this Issue 6/2015

Acta Neuropathologica 6/2015 Go to the issue