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Pilomyxoid Astrocytoma 7208af53-1e09-411a-951d-1ea7bd40be53
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47381de4-c9fd-4999-8dd0-1808cd72db6b Luke L. Linscott, MD
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5cff4116-3654-4b3a-bb75-5ebe0b8c9850 Anne G. Osborn, MD, FACR
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Pediatric Neuroradiology pediatric-neuroradiology d0eb8f4a-e769-43dd-896c-8c9c27ce8759
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Neoplasms neoplasms 753a271a-f539-4662-a805-059486e3c267
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Pilomyxoid Astrocytoma pilomyxoid-astrocytoma null
Pediatrics 34d90a10-f275-4f55-922b-0f89af8cba2b 614c8777-1be1-46f0-acce-655cdd80afc3 29 02/09/24 Pilomyxoid Astrocytoma Pediatrics, Diagnosis, Pediatric Neuroradiology, Brain, Pathology-Based Diagnoses, Neoplasms, Pilomyxoid Astrocytoma Pilomyxoid Astrocytoma | STATdx Pilomyxoid Astrocytoma DX true
Pediatrics
Diagnosis
Pediatric Neuroradiology
Brain
Pathology-Based Diagnoses
Neoplasms
Pilomyxoid Astrocytoma

title: "Pilomyxoid Astrocytoma" docid: "7208af53-1e09-411a-951d-1ea7bd40be53" authors:

  • key: "47381de4-c9fd-4999-8dd0-1808cd72db6b" value: "Luke L. Linscott, MD"
  • key: "5cff4116-3654-4b3a-bb75-5ebe0b8c9850" value: "Anne G. Osborn, MD, FACR" breadcrumbs:
  • name: "Pediatrics" slug: "pediatrics" treeNodeId: "a915965c-d436-44cf-ae65-2f22e7246ea4"
  • name: "Diagnosis" slug: "diagnosis" treeNodeId: "2b5cea64-a083-489e-ac0c-ec14ba059026"
  • name: "Pediatric Neuroradiology" slug: "pediatric-neuroradiology" treeNodeId: "d0eb8f4a-e769-43dd-896c-8c9c27ce8759"
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  • name: "Neoplasms" slug: "neoplasms" treeNodeId: "753a271a-f539-4662-a805-059486e3c267"
  • name: "Pilomyxoid Astrocytoma" slug: "pilomyxoid-astrocytoma" treeNodeId: null category: "Pediatrics" cmeTopicId: "34d90a10-f275-4f55-922b-0f89af8cba2b" documentVersionId: "614c8777-1be1-46f0-acce-655cdd80afc3" imageCount: 29 lastUpdated: "02/09/24" pageDescription: "Pilomyxoid Astrocytoma" pageKeywords: "Pediatrics, Diagnosis, Pediatric Neuroradiology, Brain, Pathology-Based Diagnoses, Neoplasms, Pilomyxoid Astrocytoma" pageTitle: "Pilomyxoid Astrocytoma | STATdx" enhancedTitle: "Pilomyxoid Astrocytoma" type: "DX" references: true breadcrumbs:
  • "Pediatrics"
  • "Diagnosis"
  • "Pediatric Neuroradiology"
  • "Brain"
  • "Pathology-Based Diagnoses"
  • "Neoplasms"
  • "Pilomyxoid Astrocytoma"

KEY FACTS

  • Terminology

    • Pilomyxoid astrocytoma (PMA): More aggressive, myxoid variant of pilocytic astrocytoma (PA) - High risk of local recurrence, CSF dissemination
  • Imaging

    • 60% suprasellar (large, bulky, H-shaped mass in hypothalamus/optic chiasm, medial temporal lobes)
    • 40% outside diencephalon (hemisphere, ventricles)
    • Grossly well circumscribed, little/no edema
    • Enhances strongly
    • 20% show intratumoral hemorrhage
  • Top Differential Diagnoses

    • PA
    • High-grade glioma
    • Germinoma
  • Pathology

    • WHO grade 2 (typical PA is WHO grade 1)
  • Clinical Issues

    • Typical: Infants, young children (< 4 years)
    • Less common: Older children, young adults
    • 5-10% of cases initially diagnosed as PAs may actually be PMAs - Especially if tumor is hemorrhagic, presents in very young child, or shows CSF dissemination
  • Diagnostic Checklist

    • Consider PMA if - Infant or young child has large/bulky or hemorrhagic H-shaped suprasellar mass - Presumed PA in any patient who has atypical imaging (e.g., hemorrhage, metastases)

TERMINOLOGY

  • Abbreviations

    • Pilomyxoid astrocytoma (PMA)
  • Synonyms

    • Myxoid variant of pilocytic astrocytoma (PA)
  • Definitions

    • Tumor with monomorphic piloid cells dispersed in mucopolysaccharide-rich matrix - More aggressive tumor than PA with high risk of local recurrence, dissemination

IMAGING

  • General Features

    • Best diagnostic clue

      - Infant or young child with large, bulky, H-shaped mass in hypothalamus/optic chiasm, medial temporal lobes
      
    • Location

      - 60% suprasellar
              - Optic chiasm, hypothalamus
              - Extension into adjacent structures is common with larger tumors
              - Deep gray nuclei, temporal lobes, adjacent white matter often involved
      - 40% centered **outside** diencephalon
              - Cerebral hemispheres
                        - 2nd most common general location
                        - Temporal lobe most common
                        - May be purely cortical
              - Less common sites reported
                        - Midbrain
                        - Cerebellum
                        - 4th ventricle
                        - Spinal cord
      
    • Size

      - Variable
              - Mean: 4 cm
              - Often large, bulky (up to 12 cm)
      
    • Morphology

      - Grossly well circumscribed
      
  • CT Findings

    • NECT

      - Uniform hypodensity most common
      - 20% show intratumoral hemorrhage
              - Hyperdense; mixed hypo-/hyperdense
      - Ca⁺⁺ occurs but uncommon
      
    • CECT

      - Strong, but inhomogeneous enhancement
      - Irregular central nonenhancing area in 1/3
      
  • MR Findings

    • T1WI

      - Typical: Uniformly hypointense (almost 2/3 of cases)
      - Less common: Mixed hypo-/hyperintensity (10-15%)
      - Uncommon: Blood-fluid level
      
    • T2WI

      - 70% uniformly hyperintense
      - 15% inhomogeneously hyperintense
      - 10% hypointense center, hyperintense rim
      
    • FLAIR

      - 50% uniformly hyperintense
      - 33% heterogeneously hyperintense
      - Relatively well-demarcated margins
      - Little or no peritumoral edema
      
    • T2* GRE

      - Intratumoral hemorrhage in 20%
      - May be strikingly hypointense
      
    • DWI

      - Typically does not restrict
      - ADC signal in solid component usually significantly ↑ compared to brain parenchyma
      
    • PWI

      - ASL and DSC PWI may help distinguish PMA from PA
              - ASL: Mean tumor:GM cerebral blood flow (CBF) ratio = 1.3 in PMA vs. 0.4 in PA
              - DSC: Relative cerebral blood volume (rCBV) is 2 in PMA vs. 1.5 in PA
      
    • T1WI C+

      - Strong but heterogeneous enhancement
              - 50% heterogeneous (i.e., rim)
              - 40% solid, homogeneous
              - 10% no enhancement
      - Basilar/spinal meningeal enhancement is common and indicates CSF dissemination
      
  • Other Modality Findings

    • MRS - ↑ Cho, ↓ Cr and NAA ± lactate - Some authors report low-metabolite pattern with ↓ Cho, Cr, NAA
  • Imaging Recommendations

    • Best imaging tool

      - MR with T1 C+, DWI, T2* (GRE or SWI), MRS
      
    • Protocol advice

      - Thin-section sagittal, coronal pre- and postcontrast T1WI
      - Whole-brain FLAIR
      - Thin-section T2WI through hypothalamus, chiasm
      - GRE or SWI (to look for hemorrhage)
      - Optional: Add DWI, MRS
      

DIFFERENTIAL DIAGNOSIS

  • Pilocytic Astrocytoma
    • Older children (mean age at diagnosis: 6 years)
    • In hypothalamus, typically enhances strongly/uniformly
    • Occasionally calcified
    • Clinically indolent, rarely aggressive
    • PMA usually more hyperintense on T2/FLAIR (mucoid matrix)
    • Hemorrhage, CSF dissemination uncommon
    • Paradoxically aggressive MRS pattern: ↑ Cho, ↓ Cr, ↓ NAA - Some PMAs show low metabolite concentrations
  • High-Grade Glioma (Anaplastic Astrocytoma, Glioblastoma)
    • Hemorrhage, necrosis common
    • Hypothalamus rare location
    • Patients usually older
    • May arise from lower grade astrocytoma
  • Germinoma
    • Most often in suprasellar, pineal, or basal ganglia regions
    • Numerous microcysts common
    • Diffusion restriction of solid components reflects high cellularity

PATHOLOGY

  • General Features

    • Etiology

      - Unknown
      - Some tumors demonstrate synaptophysin reactivity, suggesting PMAs may be of mixed glioneuronal origin
      - May also originate from tanycytic cells
      
    • Genetics

      - PMA has significant differences in gene expression vs. PA
              - *H19*, *DACT2*, extracellular matrix collagens, *IGF2BP3*(*IMP3*) overexpressed in PMAs
              - Variable tendencies toward maturation to PA
      
    • Associated abnormalities

      - Few cases associated with neurofibromatosis type 1 have been reported
      
  • Staging, Grading, & Classification

    • WHO grade 2 (PA is WHO grade 1) - Grade 3 if anaplastic features - Malignant transformation to glioblastoma (grade 4) rare but does occur
    • MIB1 generally low (1-2%) but higher in anaplastic pleomorphic xanthoastrocytomas
  • Gross Pathologic & Surgical Features

    • Large, grossly well-circumscribed mass
    • Necrosis, hemorrhage may be present
  • Microscopic Features

    • Lacks classic biphasic pattern seen in PAs - Alternating solid and loose areas interspersed with microcysts not seen - Rosenthal fibers, eosinophilic granular bodies absent
    • Consists of monomorphic piloid tumor cells - Embedded in myxoid (mucopolysaccharide-rich) matrix - GFAP (+), vimentin (+)
    • Conspicuous angiocentric growth pattern (perivascular rosettes) - Vascular proliferation may be marked - Infiltration of tumor cells into adjacent brain common - Necrosis rare

CLINICAL ISSUES

  • Presentation

    • Most common signs/symptoms

      - Signs of ↑ intracranial pressure
              - Headache
              - Nausea, vomiting
      - Delayed development
      - Failure to thrive (so-called diencephalic syndrome)
      - Visual disturbances
      - Hypothalamic dysfunction
      
    • Other signs/symptoms

      - Seizures
      - Focal neurologic deficit
      
  • Demographics

    • Age

      - Typical: Infants, young children (< 4 years)
      - Less common: Older children, young adults
      - Rare: Middle-aged adult (up to 46 years)
      
    • Sex

      - Slight male predominance (M:F = 4:3)
      
    • Epidemiology

      - Rare; represent < 1% of astrocytomas
      - 5-10% of cases initially diagnosed as PAs may be PMAs, especially if hemorrhage is present or tumor presents in very young child
      
  • Natural History & Prognosis

    • Higher recurrence rate than PA
    • CSF dissemination common
    • Bimodal pattern - Can mature to PA - May dedifferentiate into GBM
  • Treatment

    • Partial resection with adjuvant therapy may prolong survival

DIAGNOSTIC CHECKLIST

  • Consider

    • PMA if - Infant or young child has large/bulky or hemorrhagic suprasellar mass - Imaging atypical for PA (i.e., hemorrhage)
    • If PA with repeated recurrences, CSF dissemination, review histopathology and consider PMA
  • Image Interpretation Pearls

    • H-shaped suprasellar mass may be PMA

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References

Selected References

  1. AlShail E et al: A molecular study of pediatric pilomyxoid and pilocytic astrocytomas: genome-wide copy number screening, retrospective analysis of clinicopathological features and long-term clinical outcome. Front Oncol. 13:1034292, 2023
  2. Mbekeani JN et al: Pediatric pilomyxoid astrocytoma - ophthalmic and neuroradiologic manifestations. Eur J Ophthalmol. 32(5):2604-14, 2022
  3. Benson JC et al: Hypothalamic pilomyxoid astrocytoma in a child with lipodystrophy. AJNR Am J Neuroradiol. 42(8):1370-4, 2021
  4. Gader G et al: Pediatric cerebellar pilomyxoid astrocytoma: clinical and radiological findings in three cases. Asian J Neurosurg. 15(2):262-5, 2020
  5. Ho CY et al: Differentiation of pilocytic and pilomyxoid astrocytomas using dynamic susceptibility contrast perfusion and diffusion weighted imaging. Neuroradiology. 62(1):81-8, 2020
  6. He J et al: Posterior fossa pilomyxoid astrocytoma with spontaneous hemorrhage in pediatric patients. Childs Nerv Syst. 34(1):149-53, 2018
  7. Louis DN et al: The 2016 World Health Organization classification of tumors of the central nervous system: a summary. Acta Neuropathol. 131(6):803-20, 2016
  8. Wang Z et al: Spontaneous intratumoural and intraventricular haemorrhage associated with a pilomyxoid astrocytoma in the hypothalamic/chiasmatic region. J Clin Neurosci. 33:217-20, 2016
  9. Alkonyi B et al: Differential imaging characteristics and dissemination potential of pilomyxoid astrocytomas versus pilocytic astrocytomas. Neuroradiology. 57(6):625-38, 2015
  10. Amarasinghe SG et al: A rare case of multicystic disseminated astrocytoma with pilomyxoid characteristics in a 4-year-old child. Childs Nerv Syst. 31(4):625-9, 2015
  11. Nabavizadeh SA et al: High accuracy of arterial spin labeling perfusion imaging in differentiation of pilomyxoid from pilocytic astrocytoma. Neuroradiology. 57(5):527-33, 2015
  12. El Beltagy MA et al: Surgical and clinical aspects of cerebellar pilomyxoid-spectrum astrocytomas in children. Childs Nerv Syst. 30(6):1045-53, 2014
  13. Kleinschmidt-DeMasters BK et al: Pilomyxoid astrocytoma (PMA) shows significant differences in gene expression vs. pilocytic astrocytoma (PA) and variable tendency toward maturation to PA. Brain Pathol. 25(4):429-40, 2015
  14. Amirjamshidi A et al: Pilomyxoid astrocytoma. J Neurosurg Pediatr. 11(5):613, 2013
  15. Bhargava D et al: Occurrence and distribution of pilomyxoid astrocytoma. Br J Neurosurg. 27(4):413-8, 2013
  16. Lee IH et al: Imaging characteristics of pilomyxoid astrocytomas in comparison with pilocytic astrocytomas. Eur J Radiol. 79(2):311-6, 2011
  17. Johnson MW et al: Spectrum of pilomyxoid astrocytomas: intermediate pilomyxoid tumors. Am J Surg Pathol. 34(12):1783-91, 2010
  18. Amatya VJ et al: Clinicopathological and immunohistochemical features of three pilomyxoid astrocytomas: comparative study with 11 pilocytic astrocytomas. Pathol Int. 59(2):80-5, 2009
  19. Buccoliero AM et al: Occipital pilomyxoid astrocytoma in a 14-year-old girl--case report. Clin Neuropathol. 27(6):373-7, 2008
  20. Komotar RJ et al: Magnetic resonance imaging characteristics of pilomyxoid astrocytoma. Neurol Res. 30(9):945-51, 2008
  21. Linscott LL et al: Pilomyxoid astrocytoma: expanding the imaging spectrum. AJNR Am J Neuroradiol. 29(10):1861-6, 2008
  22. Brat DJ et al: Newly codified glial neoplasms of the 2007 WHO Classification of Tumours of the Central Nervous System: angiocentric glioma, pilomyxoid astrocytoma and pituicytoma. Brain Pathol. 17(3):319-24, 2007
  23. Ceppa EP et al: The pilomyxoid astrocytoma and its relationship to pilocytic astrocytoma: report of a case and a critical review of the entity. J Neurooncol. 81(2):191-6, 2007
  24. Morales H et al: Magnetic resonance imaging and spectroscopy of pilomyxoid astrocytomas: case reports and comparison with pilocytic astrocytomas. J Comput Assist Tomogr. 31(5):682-7, 2007
  25. Komotar RJ et al: Astrocytoma with pilomyxoid features presenting in an adult. Neuropathology. 26(1):89-93, 2006
  26. Melendez B et al: BCR gene disruption in a pilomyxoid astrocytoma. Neuropathology. 26(5):442-6, 2006
  27. Cirak B et al: Proton magnetic resonance spectroscopic imaging in pediatric pilomyxoid astrocytoma. Childs Nerv Syst. 21(5):404-9, 2005
  28. Komotar RJ et al: Pilomyxoid astrocytoma of the spinal cord: report of three cases. Neurosurgery. 56(1):191, 2005
  29. Chikai K et al: Clinico-pathological features of pilomyxoid astrocytoma of the optic pathway. Acta Neuropathol (Berl). 108(2):109-14, 2004
  30. Darwish B et al: Juvenile pilocytic astrocytoma 'pilomyxoid variant' with spinal metastases. J Clin Neurosci. 11(6):640-2, 2004
  31. Komotar RJ et al: Pilomyxoid astrocytoma: a review. MedGenMed. 6(4):42, 2004
  32. Arslanoglu A et al: MR imaging characteristics of pilomyxoid astrocytomas. AJNR Am J Neuroradiol. 24(9):1906-8, 2003
  33. Burger PC et al: Pathology of diencephalic astrocytomas. Pediatr Neurosurg. 32(4):214-9, 2000
  34. Tihan T et al: Pediatric astrocytomas with monomorphous pilomyxoid features and a less favorable outcome. J Neuropathol Exp Neurol. 58(10):1061-8, 1999

Images

Selected Images

Coronal graphic depicts a pilomyxoid astrocytoma (PMA). Note the large, bulky, H-shaped mass  centered in the hypothalamic/chiasmatic region and extending into both temporal lobes. The tumor is relatively well circumscribed and shows little/no edema. Glistening myxoid matrix is typical. Hemorrhage  occurs in ~ 20% of PMAs but is unusual in pilocytic astrocytoma (PA). Coronal graphic depicts a pilomyxoid astrocytoma (PMA). Note the large, bulky, H-shaped mass centered in the hypothalamic/chiasmatic region and extending into both temporal lobes. The tumor is relatively well circumscribed and shows little/no edema. Glistening myxoid matrix is typical. Hemorrhage occurs in ~ 20% of PMAs but is unusual in pilocytic astrocytoma (PA).

Coronal graphic depicts a pilomyxoid astrocytoma (PMA). Note the large, bulky, H-shaped mass  centered in the hypothalamic/chiasmatic region and extending into both temporal lobes. The tumor is relatively well circumscribed and shows little/no edema. Glistening myxoid matrix is typical. Hemorrhage  occurs in ~ 20% of PMAs but is unusual in pilocytic astrocytoma (PA). Coronal graphic depicts a pilomyxoid astrocytoma (PMA). Note the large, bulky, H-shaped mass centered in the hypothalamic/chiasmatic region and extending into both temporal lobes. The tumor is relatively well circumscribed and shows little/no edema. Glistening myxoid matrix is typical. Hemorrhage occurs in ~ 20% of PMAs but is unusual in pilocytic astrocytoma (PA).

Coronal T1 C+ MR in a 20-month-old with a PMA shows a large, heterogeneously enhancing hypothalamic mass . Coronal T1 C+ MR in a 20-month-old with a PMA shows a large, heterogeneously enhancing hypothalamic mass .

Sagittal T2 MR in a 7-month-old with a PMA shows a large mass  centered in the hypothalamus and optic chiasm. Note the pituitary  pressed down along the floor of the sella. The large size of the tumor and the very young age of the patient are typical of a PMA. Sagittal T2 MR in a 7-month-old with a PMA shows a large mass centered in the hypothalamus and optic chiasm. Note the pituitary pressed down along the floor of the sella. The large size of the tumor and the very young age of the patient are typical of a PMA.

Axial ADC MR in the same patient shows almost universal increased signal in the tumor  compared to brain parenchyma, which is typical for low-grade astrocytic tumors, such as PMAs. Axial ADC MR in the same patient shows almost universal increased signal in the tumor compared to brain parenchyma, which is typical for low-grade astrocytic tumors, such as PMAs.

Sagittal T1 C+ MR in a 2-year-old shows an avidly enhancing hypothalamic tumor . This is a typical appearance for PMA. Sagittal T1 C+ MR in a 2-year-old shows an avidly enhancing hypothalamic tumor . This is a typical appearance for PMA.

Axial SWI in the same patient shows multifocal areas of signal loss , consistent with intratumoral microhemorrhage. Microhemorrhage is more common in PMAs compared to PAs. For this reason, it is helpful diagnostically to include SWI in evaluation of hypothalamic tumors. Axial SWI in the same patient shows multifocal areas of signal loss , consistent with intratumoral microhemorrhage. Microhemorrhage is more common in PMAs compared to PAs. For this reason, it is helpful diagnostically to include SWI in evaluation of hypothalamic tumors.

Sagittal T1 C+ MR in a 23-month-old demonstrates a homogeneously enhancing midbrain lesion . Pathology revealed a PMA. Regardless of location, PMAs should be considered for any likely low-grade glioma in a very young child. Sagittal T1 C+ MR in a 23-month-old demonstrates a homogeneously enhancing midbrain lesion . Pathology revealed a PMA. Regardless of location, PMAs should be considered for any likely low-grade glioma in a very young child.

Coronal T1 C+ MR in a 2-year-old with a uniformly enhancing mass  centered in the right cerebellar hemisphere is shown. Note the associated hydrocephalus . While the cerebellum is the most common location for PAs, it is an uncommon location for PMAs. Coronal T1 C+ MR in a 2-year-old with a uniformly enhancing mass centered in the right cerebellar hemisphere is shown. Note the associated hydrocephalus . While the cerebellum is the most common location for PAs, it is an uncommon location for PMAs.

Axial T1 C+ MR in 9-year-old shows a rim-enhancing mass  with lack of adjacent edema. Enhancement patterns of PMAs vary greatly from solid homogeneous enhancement to peripheral enhancement, as seen here. Some degree of enhancement is almost universally present. Axial T1 C+ MR in 9-year-old shows a rim-enhancing mass with lack of adjacent edema. Enhancement patterns of PMAs vary greatly from solid homogeneous enhancement to peripheral enhancement, as seen here. Some degree of enhancement is almost universally present.

Sagittal T1 C+ MR in a 3-year-old with an avidly enhancing intramedullary tumor , found to be a PMA on pathology, is shown. While uncommon, PMAs have been reported to occur in the spine. Sagittal T1 C+ MR in a 3-year-old with an avidly enhancing intramedullary tumor , found to be a PMA on pathology, is shown. While uncommon, PMAs have been reported to occur in the spine.

Additional Images

Sagittal T2 MR in the same patient shows a large, lobulated tumor centered in the hypothalamus with exophytic extension of the tumor into the 3rd ventricle   and prepontine cistern . A suprasellar location is the most common location for a PMA. Sagittal T2 MR in the same patient shows a large, lobulated tumor centered in the hypothalamus with exophytic extension of the tumor into the 3rd ventricle and prepontine cistern . A suprasellar location is the most common location for a PMA.

Axial ADC map in the same patient shows hyperintense signal within the solid components of the tumor , which is characteristic of hypothalamic gliomas. There is significant overlap in imaging features of PAs and PMAs. Axial ADC map in the same patient shows hyperintense signal within the solid components of the tumor , which is characteristic of hypothalamic gliomas. There is significant overlap in imaging features of PAs and PMAs.

Sagittal T1 C+ MR in a 9-month-old with macrocephaly shows a large, centrally necrotic mass centered within the hypothalamus with extension into the sella   and 3rd ventricle. Sagittal T1 C+ MR in a 9-month-old with macrocephaly shows a large, centrally necrotic mass centered within the hypothalamus with extension into the sella and 3rd ventricle.

Axial T2* GRE MR in the same patient shows small foci of signal loss  centrally within the lesion, suggesting areas of microhemorrhage. Approximately 20% of PMAs show hemorrhage, which is rare in PAs. Whenever hemorrhage is identified in a hypothalamic glioma, a PMA should be suggested. Axial T2 GRE MR in the same patient shows small foci of signal loss centrally within the lesion, suggesting areas of microhemorrhage. Approximately 20% of PMAs show hemorrhage, which is rare in PAs. Whenever hemorrhage is identified in a hypothalamic glioma, a PMA should be suggested.*

Sagittal T2 MR in a 23-month-old with a PMA shows a homogeneously hyperintense lesion  centered in the midbrain. A PMA can occur anywhere, including the brainstem. Sagittal T2 MR in a 23-month-old with a PMA shows a homogeneously hyperintense lesion centered in the midbrain. A PMA can occur anywhere, including the brainstem.

Axial T2 MR in a 9-year-old shows a markedly hyperintense mass  centered in the right basal ganglia, causing obstruction at the foramina of Monro with obstructive hydrocephalus. Pathology revealed a PMA. Axial T2 MR in a 9-year-old shows a markedly hyperintense mass centered in the right basal ganglia, causing obstruction at the foramina of Monro with obstructive hydrocephalus. Pathology revealed a PMA.

Sagittal T1 C+ MR in a 9-year-old shows an enhancing mass projecting into the 3rd ventricle from the thalamus. PMA was diagnosed on biopsy. Sagittal T1 C+ MR in a 9-year-old shows an enhancing mass projecting into the 3rd ventricle from the thalamus. PMA was diagnosed on biopsy.

Anteroposterior MRA in the same patient shows encasement of the right anterior cerebral artery  and elevation of the middle cerebral artery  compared to the normal left side. No neovascularity was seen. A PMA was found at surgery. Anteroposterior MRA in the same patient shows encasement of the right anterior cerebral artery and elevation of the middle cerebral artery compared to the normal left side. No neovascularity was seen. A PMA was found at surgery.

Coronal T1 C+ MR in a 3-year-old shows a large, inhomogeneously enhancing, suprasellar mass encasing the carotid bifurcation . Coronal T1 C+ MR in a 3-year-old shows a large, inhomogeneously enhancing, suprasellar mass encasing the carotid bifurcation .

Sagittal T2 MR shows a large, hyperintense hypothalamic/optic chiasm mass . This could be either a pilomyxoid or PA on the basis of imaging findings. A PMA was found at surgery. Sagittal T2 MR shows a large, hyperintense hypothalamic/optic chiasm mass . This could be either a pilomyxoid or PA on the basis of imaging findings. A PMA was found at surgery.

Coronal T2 MR in an infant with a large head shows markedly enlarged lateral ventricles and a lobulated, hyperintense suprasellar mass. Coronal T2 MR in an infant with a large head shows markedly enlarged lateral ventricles and a lobulated, hyperintense suprasellar mass.

Axial FLAIR MR in the same patient shows the large mass  completely fills the suprasellar cistern, elevating and encasing both middle cerebral arteries . The mass is mildly hyperintense relative to cortex. Axial FLAIR MR in the same patient shows the large mass completely fills the suprasellar cistern, elevating and encasing both middle cerebral arteries . The mass is mildly hyperintense relative to cortex.

Axial T1 C+ SPGR MR in the same patient shows the mass  enhances intensely and quite uniformly. The H-shaped configuration centered in the suprasellar cistern is classic for PMAs, which was confirmed at surgery. (Courtesy M. Thurnher, MD.) Axial T1 C+ SPGR MR in the same patient shows the mass enhances intensely and quite uniformly. The H-shaped configuration centered in the suprasellar cistern is classic for PMAs, which was confirmed at surgery. (Courtesy M. Thurnher, MD.)

Axial FLAIR MR in a 3-year-old shows a large, H-shaped suprasellar mass with extension into the basal ganglia and both medial temporal lobes. The tumor is quite well delineated despite its size and shows no evidence for surrounding edema. Axial FLAIR MR in a 3-year-old shows a large, H-shaped suprasellar mass with extension into the basal ganglia and both medial temporal lobes. The tumor is quite well delineated despite its size and shows no evidence for surrounding edema.

Axial T1 C+ MR in the same patient shows intense, uniform enhancement. Axial T1 C+ MR in the same patient shows intense, uniform enhancement.

High-power mucin stain shows the mucinous matrix (blue) with embedded glial nuclei. MIB1 was elevated. Final diagnosis was a PMA (WHO grade II). (Courtesy R. Hewlett, MD.) High-power mucin stain shows the mucinous matrix (blue) with embedded glial nuclei. MIB1 was elevated. Final diagnosis was a PMA (WHO grade II). (Courtesy R. Hewlett, MD.)

Micropathology biopsied from the same patient shows neoplastic, bipolar, "pilocytic" cells. No Rosenthal fibers are seen. Micropathology biopsied from the same patient shows neoplastic, bipolar, "pilocytic" cells. No Rosenthal fibers are seen.

Axial T2 MR in a 20-month-old shows a huge, bulky suprasellar and medial temporal lobe mass. Scattered foci of T2 shortening within the mass  may represent hemorrhage (no T2* imaging was performed.) Axial T2 MR in a 20-month-old shows a huge, bulky suprasellar and medial temporal lobe mass. Scattered foci of T2 shortening within the mass may represent hemorrhage (no T2 imaging was performed.)*

Axial T1 C+ MR in the same patient shows mixed solid and rim enhancement. Biopsy disclosed elongated "piloid" cells in a mucin-rich matrix, consistent with a PMA. (Courtesy R. Hewlett, MD.) Axial T1 C+ MR in the same patient shows mixed solid and rim enhancement. Biopsy disclosed elongated "piloid" cells in a mucin-rich matrix, consistent with a PMA. (Courtesy R. Hewlett, MD.)