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Published in: Acta Neuropathologica 6/2017

01-06-2017 | Original Paper

The spectrum of neuropathological changes associated with congenital Zika virus infection

Authors: Leila Chimelli, Adriana S. O. Melo, Elyzabeth Avvad-Portari, Clayton A. Wiley, Aline H. S. Camacho, Vania S. Lopes, Heloisa N. Machado, Cecilia V. Andrade, Dione C. A. Dock, Maria Elisabeth Moreira, Fernanda Tovar-Moll, Patricia S. Oliveira-Szejnfeld, Angela C. G. Carvalho, Odile N. Ugarte, Alba G. M. Batista, Melania M. R. Amorim, Fabiana O. Melo, Thales A. Ferreira, Jacqueline R. L. Marinho, Girlene S. Azevedo, Jeime I. B. F. Leal, Rodrigo F. Madeiro da Costa, Stevens Rehen, Monica B. Arruda, Rodrigo M. Brindeiro, Rodrigo Delvechio, Renato S. Aguiar, Amilcar Tanuri

Published in: Acta Neuropathologica | Issue 6/2017

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Abstract

A major concern associated with ZIKV infection is the increased incidence of microcephaly with frequent calcifications in infants born from infected mothers. To date, postmortem analysis of the central nervous system (CNS) in congenital infection is limited to individual reports or small series. We report a comprehensive neuropathological study in ten newborn babies infected with ZIKV during pregnancy, including the spinal cords and dorsal root ganglia (DRG), and also muscle, pituitaries, eye, systemic organs, and placentas. Using in situ hybridization (ISH) and electron microscopy, we investigated the role of direct viral infection in the pathogenesis of the lesions. Nine women had Zika symptoms between the 4th and 18th and one in the 28th gestational week. Two babies were born at 32, one at 34 and 36 weeks each and six at term. The cephalic perimeter was reduced in four, and normal or enlarged in six patients, although the brain weights were lower than expected. All had arthrogryposis, except the patient infected at 28 weeks gestation. We defined three patterns of CNS lesions, with different patterns of destructive, calcification, hypoplasia, and migration disturbances. Ventriculomegaly was severe in the first pattern due to midbrain damage with aqueduct stenosis/distortion. The second pattern had small brains and mild/moderate (ex-vacuo) ventriculomegaly. The third pattern, a well-formed brain with mild calcification, coincided with late infection. The absence of descending fibres resulted in hypoplastic basis pontis, pyramids, and cortico-spinal tracts. Spinal motor cell loss explained the intrauterine akinesia, arthrogryposis, and neurogenic muscle atrophy. DRG, dorsal nerve roots, and columns were normal. Lympho-histiocytic inflammation was mild. ISH showed meningeal, germinal matrix, and neocortical infection, consistent with neural progenitors death leading to proliferation and migration disorders. A secondary ischemic process may explain the destructive lesions. In conclusion, we characterized the destructive and malformative consequences of ZIKV in the nervous system, as reflected in the topography and severity of lesions, anatomic localization of the virus, and timing of infection during gestation. Our findings indicate a developmental vulnerability of the immature CNS, and shed light on possible mechanisms of brain injury of this newly recognized public health threat.
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Literature
4.
go back to reference Besnard M, Eyrolle-Guignot D, Guillemette-Artur P, Lastère S, Bost-Bezeaud F, Marcelis L et al (2016) Congenital cerebral malformations and dysfunction in fetuses and newborns following the 2013–2014 Zika virus epidemic in French Polynesia. Euro Surveill. doi:10.2807/1560-7917.ES.2016.21.13.30181 PubMed Besnard M, Eyrolle-Guignot D, Guillemette-Artur P, Lastère S, Bost-Bezeaud F, Marcelis L et al (2016) Congenital cerebral malformations and dysfunction in fetuses and newborns following the 2013–2014 Zika virus epidemic in French Polynesia. Euro Surveill. doi:10.​2807/​1560-7917.​ES.​2016.​21.​13.​30181 PubMed
5.
11.
go back to reference de Fatima Vasco Aragao M, van der Linden V, Brainer-Lima AM, Coeli RR, Rocha MA, Sobral da Silva P et al (2016) Clinical features and neuroimaging (CT and MRI) findings in presumed Zika virus related congenital infection and microcephaly: retrospective case series study. BMJ 353:i1901. doi:10.1136/bmj.i1901 CrossRefPubMedPubMedCentral de Fatima Vasco Aragao M, van der Linden V, Brainer-Lima AM, Coeli RR, Rocha MA, Sobral da Silva P et al (2016) Clinical features and neuroimaging (CT and MRI) findings in presumed Zika virus related congenital infection and microcephaly: retrospective case series study. BMJ 353:i1901. doi:10.​1136/​bmj.​i1901 CrossRefPubMedPubMedCentral
14.
go back to reference Driggers RW, Ho C-Y, Korhonen EM, Kuivanen S, Jääskeläinen AJ, Smura T et al (2016) Zika virus infection with prolonged maternal viremia and fetal brain abnormalities. N Engl J Med 374:2142–2151. doi:10.1056/NEJMoa1601824 CrossRefPubMed Driggers RW, Ho C-Y, Korhonen EM, Kuivanen S, Jääskeläinen AJ, Smura T et al (2016) Zika virus infection with prolonged maternal viremia and fetal brain abnormalities. N Engl J Med 374:2142–2151. doi:10.​1056/​NEJMoa1601824 CrossRefPubMed
16.
go back to reference Ellison D, Love S, Chimelli LMC, Harding B, Lowe JS, Vinters HV et al (2012) Neuropathology: a reference text of CNS pathology. Elsevier, Amsterdam Ellison D, Love S, Chimelli LMC, Harding B, Lowe JS, Vinters HV et al (2012) Neuropathology: a reference text of CNS pathology. Elsevier, Amsterdam
18.
go back to reference Garcez PP, Nascimento JM, Mota de Vasconcelos J, Madeiro da Costa R, Delvecchio R, Trindade P et al (2016) Zika virus disrupts molecular fingerprinting of human neurospheres. Sci Rep. 7:40780. doi:10.1038/srep40780 CrossRef Garcez PP, Nascimento JM, Mota de Vasconcelos J, Madeiro da Costa R, Delvecchio R, Trindade P et al (2016) Zika virus disrupts molecular fingerprinting of human neurospheres. Sci Rep. 7:40780. doi:10.​1038/​srep40780 CrossRef
19.
20.
go back to reference Hazin AN, Poretti A, Di Cavalcanti Souza Cruz D, Tenorio M, van der Linden A, Pena LJ, Brito C et al (2016) Computed tomographic findings in microcephaly associated with Zika virus. N Engl J Med 374:2193–2195. doi:10.1056/NEJMc1603617 CrossRefPubMed Hazin AN, Poretti A, Di Cavalcanti Souza Cruz D, Tenorio M, van der Linden A, Pena LJ, Brito C et al (2016) Computed tomographic findings in microcephaly associated with Zika virus. N Engl J Med 374:2193–2195. doi:10.​1056/​NEJMc1603617 CrossRefPubMed
25.
go back to reference Larroche J-C (1977) Developmental pathology of the neonate. Excerpta Medica, Amsterdam, pp 1–21 Larroche J-C (1977) Developmental pathology of the neonate. Excerpta Medica, Amsterdam, pp 1–21
26.
go back to reference Likos A, Griffin I, Bingham AM, Stanek D, Fischer M, White S et al (2016) Local mosquito-borne transmission of Zika virus–Miami-Dade and Broward Counties, Florida, June–August 2016. MMWR Morb Mortal Wkly Rep 65:1032–1038. doi:10.15585/mmwr.mm6538e1 CrossRefPubMed Likos A, Griffin I, Bingham AM, Stanek D, Fischer M, White S et al (2016) Local mosquito-borne transmission of Zika virus–Miami-Dade and Broward Counties, Florida, June–August 2016. MMWR Morb Mortal Wkly Rep 65:1032–1038. doi:10.​15585/​mmwr.​mm6538e1 CrossRefPubMed
27.
go back to reference Love S, Wiley CA, Lucas S (2015) Viral infections. In: Love S, Perry A, Ironside J, Budka H (eds) Greenfield’s Neuropathology, 9th edn. CRC Press, London, pp 1087–1191 Love S, Wiley CA, Lucas S (2015) Viral infections. In: Love S, Perry A, Ironside J, Budka H (eds) Greenfield’s Neuropathology, 9th edn. CRC Press, London, pp 1087–1191
30.
34.
go back to reference Oliveira Melo AS, Malinger G, Ximenes R, Szejnfeld PO, Alves Sampaio S, Bispo De Filippis AM (2016) Zika virus intrauterine infection causes fetal brain abnormality and microcephaly: tip of the iceberg? Ultrasound Obstet Gynecol 47:6–7. doi:10.1002/uog.15831 CrossRefPubMed Oliveira Melo AS, Malinger G, Ximenes R, Szejnfeld PO, Alves Sampaio S, Bispo De Filippis AM (2016) Zika virus intrauterine infection causes fetal brain abnormality and microcephaly: tip of the iceberg? Ultrasound Obstet Gynecol 47:6–7. doi:10.​1002/​uog.​15831 CrossRefPubMed
37.
go back to reference Schuler-Faccini L, Ribeiro EM, Feitosa IML, Horovitz DDG, Cavalcanti DP, Pessoa A et al (2016) Possible association between zika virus infection and microcephaly—Brazil, 2015. MMWR Morb Mortal Wkly Rep 65:59–62. doi:10.15585/mmwr.mm6503e2 CrossRefPubMed Schuler-Faccini L, Ribeiro EM, Feitosa IML, Horovitz DDG, Cavalcanti DP, Pessoa A et al (2016) Possible association between zika virus infection and microcephaly—Brazil, 2015. MMWR Morb Mortal Wkly Rep 65:59–62. doi:10.​15585/​mmwr.​mm6503e2 CrossRefPubMed
38.
go back to reference Schwartz DA (2016) Autopsy and postmortem studies are concordant: pathology of Zika virus infection is neurotropic in fetuses and infants with microcephaly following transplacental transmission. Arch Pathol Lab Med 141(1):68–72. doi:10.5858/arpa.2016-0343-OA CrossRefPubMed Schwartz DA (2016) Autopsy and postmortem studies are concordant: pathology of Zika virus infection is neurotropic in fetuses and infants with microcephaly following transplacental transmission. Arch Pathol Lab Med 141(1):68–72. doi:10.​5858/​arpa.​2016-0343-OA CrossRefPubMed
41.
go back to reference Soares de Oliveira-Szejnfeld P, Levine D, de O Melo AS, Amorim MMR, Batista AGM, Chimelli L et al (2016) Congenital brain abnormalities and zika virus: what the radiologist can expect to see prenatally and postnatally. Radiology 281:203–218. doi:10.1148/radiol.2016161584 CrossRefPubMed Soares de Oliveira-Szejnfeld P, Levine D, de O Melo AS, Amorim MMR, Batista AGM, Chimelli L et al (2016) Congenital brain abnormalities and zika virus: what the radiologist can expect to see prenatally and postnatally. Radiology 281:203–218. doi:10.​1148/​radiol.​2016161584 CrossRefPubMed
44.
go back to reference Štrafela P, Vizjak A, Mraz J, Mlakar J, Pižem J, Tul N et al (2016) Zika virus-associated micrencephaly: a thorough description of neuropathologic findings in the fetal central nervous system. Arch Pathol Lab Med 141:73–81. doi:10.5858/arpa.2016-0341-SA CrossRefPubMed Štrafela P, Vizjak A, Mraz J, Mlakar J, Pižem J, Tul N et al (2016) Zika virus-associated micrencephaly: a thorough description of neuropathologic findings in the fetal central nervous system. Arch Pathol Lab Med 141:73–81. doi:10.​5858/​arpa.​2016-0341-SA CrossRefPubMed
48.
Metadata
Title
The spectrum of neuropathological changes associated with congenital Zika virus infection
Authors
Leila Chimelli
Adriana S. O. Melo
Elyzabeth Avvad-Portari
Clayton A. Wiley
Aline H. S. Camacho
Vania S. Lopes
Heloisa N. Machado
Cecilia V. Andrade
Dione C. A. Dock
Maria Elisabeth Moreira
Fernanda Tovar-Moll
Patricia S. Oliveira-Szejnfeld
Angela C. G. Carvalho
Odile N. Ugarte
Alba G. M. Batista
Melania M. R. Amorim
Fabiana O. Melo
Thales A. Ferreira
Jacqueline R. L. Marinho
Girlene S. Azevedo
Jeime I. B. F. Leal
Rodrigo F. Madeiro da Costa
Stevens Rehen
Monica B. Arruda
Rodrigo M. Brindeiro
Rodrigo Delvechio
Renato S. Aguiar
Amilcar Tanuri
Publication date
01-06-2017
Publisher
Springer Berlin Heidelberg
Published in
Acta Neuropathologica / Issue 6/2017
Print ISSN: 0001-6322
Electronic ISSN: 1432-0533
DOI
https://doi.org/10.1007/s00401-017-1699-5

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