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Published in: Journal of Neuroinflammation 1/2022

Open Access 01-12-2022 | Meningitis | Review

Spatial and temporal variation of routine parameters: pitfalls in the cerebrospinal fluid analysis in central nervous system infections

Authors: Marija Djukic, Peter Lange, Frank Erbguth, Roland Nau

Published in: Journal of Neuroinflammation | Issue 1/2022

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Abstract

The cerebrospinal fluid (CSF) space is convoluted. CSF flow oscillates with a net flow from the ventricles towards the cerebral and spinal subarachnoid space. This flow is influenced by heartbeats, breath, head or body movements as well as the activity of the ciliated epithelium of the plexus and ventricular ependyma. The shape of the CSF space and the CSF flow preclude rapid equilibration of cells, proteins and smaller compounds between the different parts of the compartment. In this review including reinterpretation of previously published data we illustrate, how anatomical and (patho)physiological conditions can influence routine CSF analysis. Equilibration of the components of the CSF depends on the size of the molecule or particle, e.g., lactate is distributed in the CSF more homogeneously than proteins or cells. The concentrations of blood-derived compounds usually increase from the ventricles to the lumbar CSF space, whereas the concentrations of brain-derived compounds usually decrease. Under special conditions, in particular when distribution is impaired, the rostro-caudal gradient of blood-derived compounds can be reversed. In the last century, several researchers attempted to define typical CSF findings for the diagnosis of several inflammatory diseases based on routine parameters. Because of the high spatial and temporal variations, findings considered typical of certain CNS diseases often are absent in parts of or even in the entire CSF compartment. In CNS infections, identification of the pathogen by culture, antigen detection or molecular methods is essential for diagnosis.
Literature
1.
go back to reference Reiber H. Clinical relevance of neuroimmunological reaction patterns in cerebrospinal fluid. Lab Med. 1995;19:444–62. Reiber H. Clinical relevance of neuroimmunological reaction patterns in cerebrospinal fluid. Lab Med. 1995;19:444–62.
2.
go back to reference Felgenhauer K, Beuche W. Labordiagnostik neurologischer Erkrankungen: Liquoranalytik und -zytologie, Diagnose- und Prozessmarker. Stuttgart: Thieme; 1999. Felgenhauer K, Beuche W. Labordiagnostik neurologischer Erkrankungen: Liquoranalytik und -zytologie, Diagnose- und Prozessmarker. Stuttgart: Thieme; 1999.
3.
go back to reference Dorta Contreras AJ. Reibergrams: essential element in cerebrospinal fluid immunological analysis. Rev Neurol. 1999;28:996–8.PubMed Dorta Contreras AJ. Reibergrams: essential element in cerebrospinal fluid immunological analysis. Rev Neurol. 1999;28:996–8.PubMed
4.
go back to reference Valkov T, Hristova J, Tcherveniakova T, Svinarov D. Blood-brain barrier and intrathecal immune response in patients with neuroinfections. Infez Med. 2017;25:320–5.PubMed Valkov T, Hristova J, Tcherveniakova T, Svinarov D. Blood-brain barrier and intrathecal immune response in patients with neuroinfections. Infez Med. 2017;25:320–5.PubMed
5.
go back to reference Zheng G, Ji X, Yu X, et al. Development and verification of a discriminate algorithm for diagnosing post-neurosurgical bacterial meningitis—a multicenter observational study. J Clin Lab Anal. 2020;34: e23069.PubMed Zheng G, Ji X, Yu X, et al. Development and verification of a discriminate algorithm for diagnosing post-neurosurgical bacterial meningitis—a multicenter observational study. J Clin Lab Anal. 2020;34: e23069.PubMed
6.
go back to reference Mentis AA, Garcia I, Jiménez J, Paparoupa M, Xirogianni A, Papandreou A, Tzanakaki G. Artificial intelligence in differential diagnostics of meningitis: a nationwide study. Diagnostics (Basel). 2021;11:602.CrossRef Mentis AA, Garcia I, Jiménez J, Paparoupa M, Xirogianni A, Papandreou A, Tzanakaki G. Artificial intelligence in differential diagnostics of meningitis: a nationwide study. Diagnostics (Basel). 2021;11:602.CrossRef
10.
go back to reference Koopmans MM, Brouwer MC, Bijlsma MW, Bovenkerk S, Keijzers W, van der Ende A, van de Beek D. Listeria monocytogenes sequence type 6 and increased rate of unfavorable outcome in meningitis: epidemiologic cohort study. Clin Infect Dis. 2013;57:247–53.PubMedCrossRef Koopmans MM, Brouwer MC, Bijlsma MW, Bovenkerk S, Keijzers W, van der Ende A, van de Beek D. Listeria monocytogenes sequence type 6 and increased rate of unfavorable outcome in meningitis: epidemiologic cohort study. Clin Infect Dis. 2013;57:247–53.PubMedCrossRef
11.
go back to reference Gerber J, Tumani H, Kolenda H, Nau R. Lumbar and ventricular CSF protein, leukocytes, and lactate in suspected bacterial CNS infections. Neurology. 1998;51:1710–4.PubMedCrossRef Gerber J, Tumani H, Kolenda H, Nau R. Lumbar and ventricular CSF protein, leukocytes, and lactate in suspected bacterial CNS infections. Neurology. 1998;51:1710–4.PubMedCrossRef
12.
go back to reference Davson H, Welch K, Segal MB. Physiology and pathophysiology of the cerebrospinal fluid. Churchill Livingstone, Edinburgh, London 1987. Davson H, Welch K, Segal MB. Physiology and pathophysiology of the cerebrospinal fluid. Churchill Livingstone, Edinburgh, London 1987.
13.
go back to reference Nau R, Sörgel F, Eiffert H. Penetration of drugs through the blood-cerebrospinal fluid/blood-brain barrier for treatment of central nervous system infections. Clin Microbiol Rev. 2010;23:858–83.PubMedPubMedCentralCrossRef Nau R, Sörgel F, Eiffert H. Penetration of drugs through the blood-cerebrospinal fluid/blood-brain barrier for treatment of central nervous system infections. Clin Microbiol Rev. 2010;23:858–83.PubMedPubMedCentralCrossRef
14.
go back to reference Rall DP, Oppelt WW, Patlak CS. Extracellular space of brain as determined by diffusion of inulin from the ventricular system. Life Sci. 1962;2:43–8.CrossRef Rall DP, Oppelt WW, Patlak CS. Extracellular space of brain as determined by diffusion of inulin from the ventricular system. Life Sci. 1962;2:43–8.CrossRef
15.
go back to reference Lasley SM. The use of intracerebral microdialysis to elucidate environmentally induced neurotoxic mechanisms. Curr Protoc Toxicol. 2019;80: e72.PubMedPubMedCentral Lasley SM. The use of intracerebral microdialysis to elucidate environmentally induced neurotoxic mechanisms. Curr Protoc Toxicol. 2019;80: e72.PubMedPubMedCentral
16.
go back to reference Jacobi C, Lange P, Reiber H. Quantitation of intrathecal antibodies in cerebrospinal fluid of subacute sclerosing panencephalitis, herpes simplex encephalitis and multiple sclerosis: discrimination between microorganism-driven and polyspecific immune response. J Neuroimmunol. 2007;187:139–46.PubMedCrossRef Jacobi C, Lange P, Reiber H. Quantitation of intrathecal antibodies in cerebrospinal fluid of subacute sclerosing panencephalitis, herpes simplex encephalitis and multiple sclerosis: discrimination between microorganism-driven and polyspecific immune response. J Neuroimmunol. 2007;187:139–46.PubMedCrossRef
17.
go back to reference Reiber H. Dynamics of brain-derived proteins in cerebrospinal fluid. Clin Chim Acta. 2001;310:173–86.PubMedCrossRef Reiber H. Dynamics of brain-derived proteins in cerebrospinal fluid. Clin Chim Acta. 2001;310:173–86.PubMedCrossRef
18.
go back to reference Reiber H. Non-linear ventriculo–lumbar protein gradients validate the diffusion-flow model for the blood–CSF barrier. Clin Chim Acta. 2021;513:64–7.PubMedCrossRef Reiber H. Non-linear ventriculo–lumbar protein gradients validate the diffusion-flow model for the blood–CSF barrier. Clin Chim Acta. 2021;513:64–7.PubMedCrossRef
19.
go back to reference Crone C. The blood–brain barrier—facts and questions. In: Siesjö BK, Sörensen SC, editors. Ion homeostasis of the brain. Munksgaard, Kopenhagen: Denmark; 1971. p. 52–62. Crone C. The blood–brain barrier—facts and questions. In: Siesjö BK, Sörensen SC, editors. Ion homeostasis of the brain. Munksgaard, Kopenhagen: Denmark; 1971. p. 52–62.
20.
go back to reference Courchesne E, Chisum HJ, Townsend J, et al. Normal brain development and aging: quantitative analysis at in vivo MR imaging in healthy volunteers. Radiology. 2000;216:672–82.PubMedCrossRef Courchesne E, Chisum HJ, Townsend J, et al. Normal brain development and aging: quantitative analysis at in vivo MR imaging in healthy volunteers. Radiology. 2000;216:672–82.PubMedCrossRef
21.
go back to reference Fleischhack G, Jaehde U, Bode U. Pharmacokinetics following intraventricular administration of chemotherapy in patients with neoplastic meningitis. Clin Pharmacokinet. 2005;44:1–31.PubMedCrossRef Fleischhack G, Jaehde U, Bode U. Pharmacokinetics following intraventricular administration of chemotherapy in patients with neoplastic meningitis. Clin Pharmacokinet. 2005;44:1–31.PubMedCrossRef
22.
go back to reference Lebret A, Hodel J, Rahmouni A, Decq P, Petit E. Cerebrospinal fluid volume analysis for hydrocephalus diagnosis and clinical research. Comput Med Imaging Graph. 2013;37:224–33.PubMedCrossRef Lebret A, Hodel J, Rahmouni A, Decq P, Petit E. Cerebrospinal fluid volume analysis for hydrocephalus diagnosis and clinical research. Comput Med Imaging Graph. 2013;37:224–33.PubMedCrossRef
23.
go back to reference Carpenter RL, Hogan QH, Liu SS, Crane B, Moore J. Lumbosacral cerebrospinal fluid volume is the primary determinant of sensory block extent and duration during spinal anesthesia. Anesthesiology. 1998;89:24–9.PubMedCrossRef Carpenter RL, Hogan QH, Liu SS, Crane B, Moore J. Lumbosacral cerebrospinal fluid volume is the primary determinant of sensory block extent and duration during spinal anesthesia. Anesthesiology. 1998;89:24–9.PubMedCrossRef
24.
go back to reference Seyfert S, Kunzmann V, Schwertfeger N, Koch HC, Faulstich A. Determinants of lumbar CSF protein concentration. J Neurol. 2002;249:1021–6.PubMedCrossRef Seyfert S, Kunzmann V, Schwertfeger N, Koch HC, Faulstich A. Determinants of lumbar CSF protein concentration. J Neurol. 2002;249:1021–6.PubMedCrossRef
25.
go back to reference Parrado-Fernandez C, Blennow K, Hansson M, Leoni V, Cedazo-Minguez A, Bjorkhem I. Evidence for sex difference in the CSF/plasma albumin ratio in ~20000 patients and 335 healthy volunteers. J Cell Mol Med. 2018;22(10):5151–4.PubMedPubMedCentralCrossRef Parrado-Fernandez C, Blennow K, Hansson M, Leoni V, Cedazo-Minguez A, Bjorkhem I. Evidence for sex difference in the CSF/plasma albumin ratio in ~20000 patients and 335 healthy volunteers. J Cell Mol Med. 2018;22(10):5151–4.PubMedPubMedCentralCrossRef
26.
go back to reference Meixensberger S, Bechter K, Dersch R, et al. Sex difference in cerebrospinal fluid/blood albumin quotients in patients with schizophreniform and affective psychosis. Fluids Barriers CNS. 2020;17(1):67.PubMedPubMedCentralCrossRef Meixensberger S, Bechter K, Dersch R, et al. Sex difference in cerebrospinal fluid/blood albumin quotients in patients with schizophreniform and affective psychosis. Fluids Barriers CNS. 2020;17(1):67.PubMedPubMedCentralCrossRef
27.
go back to reference Merritt HH, Fremont-Smith F. The cerebrospinal fluid. Philadelphia: WB Saunders; 1937. Merritt HH, Fremont-Smith F. The cerebrospinal fluid. Philadelphia: WB Saunders; 1937.
28.
go back to reference Mollenhauer B, Trautmann E, Otte B, et al. α-Synuclein in human cerebrospinal fluid is principally derived from neurons of the central nervous system. J Neural Transm. 2012;119:739–46.PubMedCrossRef Mollenhauer B, Trautmann E, Otte B, et al. α-Synuclein in human cerebrospinal fluid is principally derived from neurons of the central nervous system. J Neural Transm. 2012;119:739–46.PubMedCrossRef
30.
go back to reference Spector R, Robert Snodgrass S, Johanson CE. A balanced view of the cerebrospinal fluid composition and functions: focus on adult humans. Exp Neurol. 2015;273:57–68.PubMedCrossRef Spector R, Robert Snodgrass S, Johanson CE. A balanced view of the cerebrospinal fluid composition and functions: focus on adult humans. Exp Neurol. 2015;273:57–68.PubMedCrossRef
31.
go back to reference Dreha-Kulaczewski S, Joseph AA, Merboldt K-D, Ludwig H-C, Gärtner J, Frahm J. Identification of the upward movement of human CSF in vivo and its relation to the brain venous system. J Neurosci. 2017;37:2395–402.PubMedPubMedCentralCrossRef Dreha-Kulaczewski S, Joseph AA, Merboldt K-D, Ludwig H-C, Gärtner J, Frahm J. Identification of the upward movement of human CSF in vivo and its relation to the brain venous system. J Neurosci. 2017;37:2395–402.PubMedPubMedCentralCrossRef
32.
go back to reference Takizawa K, Matsumae M, Sunohara S, Yatsushiro S, Kuroda K. Characterization of cardiac- and respiratory-driven cerebrospinal fluid motion based on asynchronous phase-contrast magnetic resonance imaging in volunteers. Fluids Barriers CNS. 2017;14:25.PubMedPubMedCentralCrossRef Takizawa K, Matsumae M, Sunohara S, Yatsushiro S, Kuroda K. Characterization of cardiac- and respiratory-driven cerebrospinal fluid motion based on asynchronous phase-contrast magnetic resonance imaging in volunteers. Fluids Barriers CNS. 2017;14:25.PubMedPubMedCentralCrossRef
33.
go back to reference Eichele G, Bodenschatz E, Ditte Z, Günther AK, Kapoor S, Wang Y, Westendorf C. Cilia-driven flows in the brain third ventricle. Philos Trans R Soc Lond B Biol Sci. 2020;375(1792):20190154.PubMedCrossRef Eichele G, Bodenschatz E, Ditte Z, Günther AK, Kapoor S, Wang Y, Westendorf C. Cilia-driven flows in the brain third ventricle. Philos Trans R Soc Lond B Biol Sci. 2020;375(1792):20190154.PubMedCrossRef
34.
go back to reference Faubel R, Westendorf C, Bodenschatz E, Eichele G. Cilia-based flow network in the brain ventricles. Science (New York). 2016;353(6295):176–8.CrossRef Faubel R, Westendorf C, Bodenschatz E, Eichele G. Cilia-based flow network in the brain ventricles. Science (New York). 2016;353(6295):176–8.CrossRef
35.
go back to reference Nilsson C, Ståhlberg F, Thomsen C, Henriksen O, Herning M, Owman C. Circadian variation in human cerebrospinal fluid production measured by magnetic resonance imaging. Am J Physiol. 1992;262:R20–4.PubMed Nilsson C, Ståhlberg F, Thomsen C, Henriksen O, Herning M, Owman C. Circadian variation in human cerebrospinal fluid production measured by magnetic resonance imaging. Am J Physiol. 1992;262:R20–4.PubMed
36.
go back to reference Silverberg GD, Heit G, Huhn S, et al. The cerebrospinal fluid production rate is reduced in dementia of the Alzheimer’s type. Neurology. 2001;57:1763–6.PubMedCrossRef Silverberg GD, Heit G, Huhn S, et al. The cerebrospinal fluid production rate is reduced in dementia of the Alzheimer’s type. Neurology. 2001;57:1763–6.PubMedCrossRef
37.
go back to reference Klein O, Demoulin B, Jean Auque RT, Audibert G, Sainte-Rose C, Marchal JC, Marchal F. Cerebrospinal fluid outflow and intracranial pressure in hydrocephalic patients with external ventricular drainage. Acta Neurol Scand. 2010;122:140–7.PubMed Klein O, Demoulin B, Jean Auque RT, Audibert G, Sainte-Rose C, Marchal JC, Marchal F. Cerebrospinal fluid outflow and intracranial pressure in hydrocephalic patients with external ventricular drainage. Acta Neurol Scand. 2010;122:140–7.PubMed
38.
go back to reference Zhang L, Hussain Z, Ren Z. Recent advances in rational diagnosis and treatment of normal pressure hydrocephalus: a critical appraisal on novel diagnostic, therapy monitoring and treatment modalities. Curr Drug Targets. 2019;20:1041–57.PubMedCrossRef Zhang L, Hussain Z, Ren Z. Recent advances in rational diagnosis and treatment of normal pressure hydrocephalus: a critical appraisal on novel diagnostic, therapy monitoring and treatment modalities. Curr Drug Targets. 2019;20:1041–57.PubMedCrossRef
39.
41.
go back to reference Hakim S, Venegas JG, Burton JD. The physics of the cranial cavity, hydrocephalus and normal pressure hydrocephalus: mechanical interpretation and mathematical model. Surg Neurol. 1976;5:187–210.PubMed Hakim S, Venegas JG, Burton JD. The physics of the cranial cavity, hydrocephalus and normal pressure hydrocephalus: mechanical interpretation and mathematical model. Surg Neurol. 1976;5:187–210.PubMed
42.
go back to reference Dóczi T. Volume regulation of the brain tissue–a survey. Acta Neurochir (Wien). 1993;121:1–8.CrossRef Dóczi T. Volume regulation of the brain tissue–a survey. Acta Neurochir (Wien). 1993;121:1–8.CrossRef
43.
go back to reference Strong JM, Collins JM, Lester C, Poplack DG. Pharmacokinetics of intraventricular and intravenous N, N’, N’’-triethylenethiophosphoramide (thiotepa) in rhesus monkeys and humans. Cancer Res. 1986;46:6101–4.PubMed Strong JM, Collins JM, Lester C, Poplack DG. Pharmacokinetics of intraventricular and intravenous N, N’, N’’-triethylenethiophosphoramide (thiotepa) in rhesus monkeys and humans. Cancer Res. 1986;46:6101–4.PubMed
44.
go back to reference Heideman RL, Cole DE, Balis F, et al. Phase I and pharmacokinetic evaluation of thiotepa in the cerebrospinal fluid and plasma of pediatric patients: evidence for dose-dependent plasma clearance of thiotepa. Cancer Res. 1989;49:736–41.PubMed Heideman RL, Cole DE, Balis F, et al. Phase I and pharmacokinetic evaluation of thiotepa in the cerebrospinal fluid and plasma of pediatric patients: evidence for dose-dependent plasma clearance of thiotepa. Cancer Res. 1989;49:736–41.PubMed
45.
go back to reference Frick E, Scheid-Seydel L. Untersuchungen mit J131-markiertem Albumin über Austauschvorgänge zwischen plasma und liquor cerebrospinalis. Klin Wochenschr. 1958;36:66–9.PubMedCrossRef Frick E, Scheid-Seydel L. Untersuchungen mit J131-markiertem Albumin über Austauschvorgänge zwischen plasma und liquor cerebrospinalis. Klin Wochenschr. 1958;36:66–9.PubMedCrossRef
46.
go back to reference Frick E, Scheid-Seydel L. Untersuchungen mit J131-markiertem γ-Globulin zur Frage der Abstammung der Liquoreiweißkörper. Klin Wochenschr. 1958;36:857–63.PubMedCrossRef Frick E, Scheid-Seydel L. Untersuchungen mit J131-markiertem γ-Globulin zur Frage der Abstammung der Liquoreiweißkörper. Klin Wochenschr. 1958;36:857–63.PubMedCrossRef
47.
go back to reference Sweet WH, Selverstone B, Solloway S, Stetten D. Studies of formation, flow and absorption of cerebrospinal fluid II Studies with heavy water in the normal man. Saunders, Philadelphia: American College of Surgeons Surgical Forum; 1950. p. 376–81. Sweet WH, Selverstone B, Solloway S, Stetten D. Studies of formation, flow and absorption of cerebrospinal fluid II Studies with heavy water in the normal man. Saunders, Philadelphia: American College of Surgeons Surgical Forum; 1950. p. 376–81.
48.
go back to reference Nau R, Sörgel F, Prange HW. Pharmacokinetic optimisation of the treatment of bacterial central nervous system infections. Clin Pharmacokinet. 1998;35:223–46.PubMedCrossRef Nau R, Sörgel F, Prange HW. Pharmacokinetic optimisation of the treatment of bacterial central nervous system infections. Clin Pharmacokinet. 1998;35:223–46.PubMedCrossRef
49.
go back to reference Fishman RA, Ransohoff J, Osserman EF. Factors influencing the concentration gradient of protein in cerebrospinal fluid. J Clin Invest. 1958;37:1419–24.PubMedPubMedCentralCrossRef Fishman RA, Ransohoff J, Osserman EF. Factors influencing the concentration gradient of protein in cerebrospinal fluid. J Clin Invest. 1958;37:1419–24.PubMedPubMedCentralCrossRef
50.
go back to reference Kaiser AB, McGee ZA. Aminoglycoside therapy of gram-negative bacillary meningitis. N Engl J Med. 1975;293:1215–20.PubMedCrossRef Kaiser AB, McGee ZA. Aminoglycoside therapy of gram-negative bacillary meningitis. N Engl J Med. 1975;293:1215–20.PubMedCrossRef
51.
go back to reference Wright PF, Kaiser AB, Bowman CM, McKee KT Jr, Trujillo H, McGee ZA. The pharmacokinetics and efficacy of an aminoglycoside administered into the cerebral ventricles in neonates: implications for further evaluation of this route of therapy in meningitis. J Infect Dis. 1981;143:141–7.PubMedCrossRef Wright PF, Kaiser AB, Bowman CM, McKee KT Jr, Trujillo H, McGee ZA. The pharmacokinetics and efficacy of an aminoglycoside administered into the cerebral ventricles in neonates: implications for further evaluation of this route of therapy in meningitis. J Infect Dis. 1981;143:141–7.PubMedCrossRef
53.
go back to reference Blaney SM, Poplack DG, Godwin K, McCully CL, Murphy R, Balis FM. Effect of body position on ventricular CSF methotrexate concentration following intralumbar administration. J Clin Oncol. 1995;13:177–9.PubMedCrossRef Blaney SM, Poplack DG, Godwin K, McCully CL, Murphy R, Balis FM. Effect of body position on ventricular CSF methotrexate concentration following intralumbar administration. J Clin Oncol. 1995;13:177–9.PubMedCrossRef
54.
55.
go back to reference Proulx ST. Cerebrospinal fluid outflow: a review of the historical and contemporary evidence for arachnoid villi, perineural routes, and dural lymphatics. Cell Mol Life Sci. 2021;78(6):2429–57.PubMedPubMedCentralCrossRef Proulx ST. Cerebrospinal fluid outflow: a review of the historical and contemporary evidence for arachnoid villi, perineural routes, and dural lymphatics. Cell Mol Life Sci. 2021;78(6):2429–57.PubMedPubMedCentralCrossRef
57.
go back to reference Pollay M. The function and structure of the cerebrospinal fluid outflow system. Cerebrospinal Fluid Res. 2010;7:955.CrossRef Pollay M. The function and structure of the cerebrospinal fluid outflow system. Cerebrospinal Fluid Res. 2010;7:955.CrossRef
58.
go back to reference Krisch B. Ultrastructure of the meninges at the site of penetration of veins through the dura mater, with particular reference to Pacchionian granulations—investigations in the rat and 2 species of New-World monkeys (Cebus-Apella, Callitrix-Jacchus). Cell Tissue Res. 1988;251(3):621–31.PubMedCrossRef Krisch B. Ultrastructure of the meninges at the site of penetration of veins through the dura mater, with particular reference to Pacchionian granulations—investigations in the rat and 2 species of New-World monkeys (Cebus-Apella, Callitrix-Jacchus). Cell Tissue Res. 1988;251(3):621–31.PubMedCrossRef
59.
go back to reference Charabati M, Rabanel JM, Ramassamy C, Prat A. Overcoming the brain barriers: from immune cells to nanoparticles. Trends Pharmacol Sci. 2020;41:42–54.PubMedCrossRef Charabati M, Rabanel JM, Ramassamy C, Prat A. Overcoming the brain barriers: from immune cells to nanoparticles. Trends Pharmacol Sci. 2020;41:42–54.PubMedCrossRef
60.
go back to reference Mascagni P. Vasorum lymphaticorum corporis humani historia et ichnographia. Siena: Pazzini Carli; 1787. Mascagni P. Vasorum lymphaticorum corporis humani historia et ichnographia. Siena: Pazzini Carli; 1787.
61.
go back to reference Aspelund A, Antila S, Proulx ST, et al. A dural lymphatic vascular system that drains brain interstitial fluid and macromolecules. J Exp Med. 2015;212(7):991–9.PubMedPubMedCentralCrossRef Aspelund A, Antila S, Proulx ST, et al. A dural lymphatic vascular system that drains brain interstitial fluid and macromolecules. J Exp Med. 2015;212(7):991–9.PubMedPubMedCentralCrossRef
62.
go back to reference Louveau A, Smirnov I, Keyes TJ, et al. Structural and functional features of central nervous system lymphatic vessels. Nature. 2015;523(7560):337–41.PubMedPubMedCentralCrossRef Louveau A, Smirnov I, Keyes TJ, et al. Structural and functional features of central nervous system lymphatic vessels. Nature. 2015;523(7560):337–41.PubMedPubMedCentralCrossRef
63.
go back to reference Nabeshima S, Reese TS, Landis DM, Brightman MW. Junctions in the meninges and marginal glia. J Comp Neurol. 1975;164(2):127–69.PubMedCrossRef Nabeshima S, Reese TS, Landis DM, Brightman MW. Junctions in the meninges and marginal glia. J Comp Neurol. 1975;164(2):127–69.PubMedCrossRef
64.
go back to reference Ooie T, Suzuki H, Terasaki T, Sugiyama Y. Kinetics of quinolone antibiotics in rats: efflux from cerebrospinal fluid to the circulation. Pharm Res. 1996;13:1065–8.PubMedCrossRef Ooie T, Suzuki H, Terasaki T, Sugiyama Y. Kinetics of quinolone antibiotics in rats: efflux from cerebrospinal fluid to the circulation. Pharm Res. 1996;13:1065–8.PubMedCrossRef
66.
go back to reference Lippincott SW, Korman S, Lax LC, Corcoran C. Transfer rates of gamma globulin between cerebrospinal fluid and blood plasma (results obtained on a series of multiple sclerosis patients). J Nucl Med. 1965;6:632–44.PubMed Lippincott SW, Korman S, Lax LC, Corcoran C. Transfer rates of gamma globulin between cerebrospinal fluid and blood plasma (results obtained on a series of multiple sclerosis patients). J Nucl Med. 1965;6:632–44.PubMed
67.
go back to reference Bayston R, Hart CA, Barnicoat M. Intraventricular vancomycin in the treatment of ventriculitis associated with cerebrospinal fluid shunting and drainage. J Neurol Neurosurg Psychiatry. 1987;50:1419–23.PubMedPubMedCentralCrossRef Bayston R, Hart CA, Barnicoat M. Intraventricular vancomycin in the treatment of ventriculitis associated with cerebrospinal fluid shunting and drainage. J Neurol Neurosurg Psychiatry. 1987;50:1419–23.PubMedPubMedCentralCrossRef
68.
go back to reference Reesor C, Chow AW, Kureishi A, Jewesson PJ. Kinetics of intraventricular vancomycin in infections of cerebrospinal fluid shunts. J Infect Dis. 1988;158:1142–3.PubMedCrossRef Reesor C, Chow AW, Kureishi A, Jewesson PJ. Kinetics of intraventricular vancomycin in infections of cerebrospinal fluid shunts. J Infect Dis. 1988;158:1142–3.PubMedCrossRef
69.
go back to reference Pfausler B, Beer R, Engelhardt K, Kemmler G, Mohsenipour I, Schmutzhard E. Cell index—a new parameter for the early diagnosis of ventriculostomy (external ventricular drainage)-related ventriculitis in patients with intraventricular hemorrhage? Acta Neurochir (Wien). 2004;146(5):477–81.CrossRef Pfausler B, Beer R, Engelhardt K, Kemmler G, Mohsenipour I, Schmutzhard E. Cell index—a new parameter for the early diagnosis of ventriculostomy (external ventricular drainage)-related ventriculitis in patients with intraventricular hemorrhage? Acta Neurochir (Wien). 2004;146(5):477–81.CrossRef
70.
go back to reference Pfausler B, Spiss H, Beer R, Kampl A, Engelhardt K, Schober M, Schmutzhard E. Treatment of staphylococcal ventriculitis associated with external cerebrospinal fluid drains: a prospective randomized trial of intravenous compared with intraventricular vancomycin therapy. J Neurosurg. 2003;98:1040–4.PubMedCrossRef Pfausler B, Spiss H, Beer R, Kampl A, Engelhardt K, Schober M, Schmutzhard E. Treatment of staphylococcal ventriculitis associated with external cerebrospinal fluid drains: a prospective randomized trial of intravenous compared with intraventricular vancomycin therapy. J Neurosurg. 2003;98:1040–4.PubMedCrossRef
71.
go back to reference Hirsch BE, Amodio M, Einzig AI, Halevy R, Soeiro R. Instillation of vancomycin into a cerebrospinal fluid reservoir to clear infection: pharmacokinetic considerations. J Infect Dis. 1991;163:197–200.PubMedCrossRef Hirsch BE, Amodio M, Einzig AI, Halevy R, Soeiro R. Instillation of vancomycin into a cerebrospinal fluid reservoir to clear infection: pharmacokinetic considerations. J Infect Dis. 1991;163:197–200.PubMedCrossRef
72.
go back to reference Li X, Sun S, Ling X, Chen K, Wang Q, Zhao Z. Plasma and cerebrospinal fluid population pharmacokinetics of vancomycin in postoperative neurosurgical patients after combined intravenous and intraventricular administration. Eur J Clin Pharmacol. 2017;73:1599–607.PubMedCrossRef Li X, Sun S, Ling X, Chen K, Wang Q, Zhao Z. Plasma and cerebrospinal fluid population pharmacokinetics of vancomycin in postoperative neurosurgical patients after combined intravenous and intraventricular administration. Eur J Clin Pharmacol. 2017;73:1599–607.PubMedCrossRef
73.
go back to reference Imberti R, Cusato M, Accetta G, et al. Pharmacokinetics of colistin in cerebrospinal fluid after intraventricular administration of colistin methanesulfonate. Antimicrob Agents Chemother. 2012;56:4416–21.PubMedPubMedCentralCrossRef Imberti R, Cusato M, Accetta G, et al. Pharmacokinetics of colistin in cerebrospinal fluid after intraventricular administration of colistin methanesulfonate. Antimicrob Agents Chemother. 2012;56:4416–21.PubMedPubMedCentralCrossRef
76.
77.
go back to reference Bonsu BK, Harper MB. Corrections for leukocytes and percent of neutrophils do not match observations in blood-contaminated cerebrospinal fluid and have no value over uncorrected cells for diagnosis. Pediatr Infect Dis J. 2006;25:8–11.PubMedCrossRef Bonsu BK, Harper MB. Corrections for leukocytes and percent of neutrophils do not match observations in blood-contaminated cerebrospinal fluid and have no value over uncorrected cells for diagnosis. Pediatr Infect Dis J. 2006;25:8–11.PubMedCrossRef
79.
go back to reference Troendle M, Pettigrew A. A systematic review of cases of meningitis in the absence of cerebrospinal fluid pleocytosis on lumbar puncture. BMC Infect Dis. 2019;19:692.PubMedPubMedCentralCrossRef Troendle M, Pettigrew A. A systematic review of cases of meningitis in the absence of cerebrospinal fluid pleocytosis on lumbar puncture. BMC Infect Dis. 2019;19:692.PubMedPubMedCentralCrossRef
80.
go back to reference Durack DT, Spanos A. End-of-treatment spinal tap in bacterial meningitis. Is it worthwhile? JAMA. 1982;248:75–8.PubMedCrossRef Durack DT, Spanos A. End-of-treatment spinal tap in bacterial meningitis. Is it worthwhile? JAMA. 1982;248:75–8.PubMedCrossRef
81.
go back to reference Nau R, Schuchardt V, Prange HW. Listeriosis of the central nervous system. Fortschr Neurol Psychiatr. 1990;58:408–22.PubMedCrossRef Nau R, Schuchardt V, Prange HW. Listeriosis of the central nervous system. Fortschr Neurol Psychiatr. 1990;58:408–22.PubMedCrossRef
82.
go back to reference Nau R, Zettl U, Gerber J, Trostdorf F, et al. Granulocytes in the subarachnoid space of humans and rabbits with bacterial meningitis undergo apoptosis and are eliminated by macrophages. Acta Neuropathol. 1998;96:472–80.PubMedCrossRef Nau R, Zettl U, Gerber J, Trostdorf F, et al. Granulocytes in the subarachnoid space of humans and rabbits with bacterial meningitis undergo apoptosis and are eliminated by macrophages. Acta Neuropathol. 1998;96:472–80.PubMedCrossRef
83.
go back to reference Spreer A, Gerber J, Hanssen M, et al. Dexamethasone increases hippocampal neuronal apoptosis in a rabbit model of Escherichia coli meningitis. Pediatr Res. 2006;60:210–5.PubMedCrossRef Spreer A, Gerber J, Hanssen M, et al. Dexamethasone increases hippocampal neuronal apoptosis in a rabbit model of Escherichia coli meningitis. Pediatr Res. 2006;60:210–5.PubMedCrossRef
84.
go back to reference Cunha BA. The clinical and laboratory diagnosis of acute meningitis and acute encephalitis. Expert Opin Med Diagn. 2013;7:343–64.PubMedCrossRef Cunha BA. The clinical and laboratory diagnosis of acute meningitis and acute encephalitis. Expert Opin Med Diagn. 2013;7:343–64.PubMedCrossRef
85.
go back to reference Wildemann B, Oschmann P, Reiber H. Laboratory diagnosis in neurology. Stuttgart, New York: Thieme; 2010.CrossRef Wildemann B, Oschmann P, Reiber H. Laboratory diagnosis in neurology. Stuttgart, New York: Thieme; 2010.CrossRef
86.
go back to reference Ratzka P, Schlachetzki JC, Bähr M, Nau R. Varicella zoster virus cerebellitis in a 66-year-old patient without herpes zoster. Lancet. 2006;367(9505):182.PubMedCrossRef Ratzka P, Schlachetzki JC, Bähr M, Nau R. Varicella zoster virus cerebellitis in a 66-year-old patient without herpes zoster. Lancet. 2006;367(9505):182.PubMedCrossRef
87.
go back to reference Otto C, Hofmann J, Finke C, Zimmermann M, Ruprecht K. The fraction of varicella zoster virus-specific antibodies among all intrathecally-produced antibodies discriminates between patients with varicella zoster virus reactivation and multiple sclerosis. Fluids Barriers CNS. 2014;11:3.PubMedPubMedCentralCrossRef Otto C, Hofmann J, Finke C, Zimmermann M, Ruprecht K. The fraction of varicella zoster virus-specific antibodies among all intrathecally-produced antibodies discriminates between patients with varicella zoster virus reactivation and multiple sclerosis. Fluids Barriers CNS. 2014;11:3.PubMedPubMedCentralCrossRef
88.
go back to reference Hammers Berggren S, Hansen K, Lebech AM, Karlsson M. Borrelia burgdorferi-specific intrathecal antibody production in neuroborreliosis: a follow-up study. Neurology. 1993;43:169–75.PubMedCrossRef Hammers Berggren S, Hansen K, Lebech AM, Karlsson M. Borrelia burgdorferi-specific intrathecal antibody production in neuroborreliosis: a follow-up study. Neurology. 1993;43:169–75.PubMedCrossRef
90.
go back to reference Abe M, Kawaguchi H, Miura N, et al. Diurnal variation of melatonin concentration in the cerebrospinal fluid of unanesthetized microminipig. In Vivo. 2018;32:583–90.PubMedPubMedCentral Abe M, Kawaguchi H, Miura N, et al. Diurnal variation of melatonin concentration in the cerebrospinal fluid of unanesthetized microminipig. In Vivo. 2018;32:583–90.PubMedPubMedCentral
91.
go back to reference Djukic M, Spreer A, Lange P, Bunkowski S, Wiltfang J, Nau R. Small cisterno-lumbar gradient of phosphorylated Tau protein in geriatric patients with suspected normal pressure hydrocephalus. Fluids Barriers CNS. 2016;13:15.PubMedPubMedCentralCrossRef Djukic M, Spreer A, Lange P, Bunkowski S, Wiltfang J, Nau R. Small cisterno-lumbar gradient of phosphorylated Tau protein in geriatric patients with suspected normal pressure hydrocephalus. Fluids Barriers CNS. 2016;13:15.PubMedPubMedCentralCrossRef
92.
go back to reference Brandner S, Thaler C, Lelental N, et al. Ventricular and lumbar cerebrospinal fluid concentrations of Alzheimer’s disease biomarkers in patients with normal pressure hydrocephalus and posttraumatic hydrocephalus. J Alzheimers Dis. 2014;41:1057–62.PubMedCrossRef Brandner S, Thaler C, Lelental N, et al. Ventricular and lumbar cerebrospinal fluid concentrations of Alzheimer’s disease biomarkers in patients with normal pressure hydrocephalus and posttraumatic hydrocephalus. J Alzheimers Dis. 2014;41:1057–62.PubMedCrossRef
93.
go back to reference Seppälä TT, Nerg O, Koivisto AM, et al. CSF biomarkers for Alzheimer disease correlate with cortical brain biopsy findings. Neurology. 2012;78:1568–75.PubMedCrossRef Seppälä TT, Nerg O, Koivisto AM, et al. CSF biomarkers for Alzheimer disease correlate with cortical brain biopsy findings. Neurology. 2012;78:1568–75.PubMedCrossRef
94.
go back to reference Pyykkö OT, Lumela M, Rummukainen J, et al. Cerebrospinal fluid biomarker and brain biopsy findings in idiopathic normal pressure hydrocephalus. PLoS ONE. 2014;9: e91974.PubMedPubMedCentralCrossRef Pyykkö OT, Lumela M, Rummukainen J, et al. Cerebrospinal fluid biomarker and brain biopsy findings in idiopathic normal pressure hydrocephalus. PLoS ONE. 2014;9: e91974.PubMedPubMedCentralCrossRef
95.
go back to reference Hegen H, Walde J, Auer M, Deisenhammer F. Cerebrospinal fluid: serum glucose ratio in the ventricular and lumbar compartments: implications for clinical practice. Eur J Neurol. 2018;25:373–9.PubMedCrossRef Hegen H, Walde J, Auer M, Deisenhammer F. Cerebrospinal fluid: serum glucose ratio in the ventricular and lumbar compartments: implications for clinical practice. Eur J Neurol. 2018;25:373–9.PubMedCrossRef
96.
go back to reference Wikkelsø C, Blomstrand C. Cerebrospinal fluid proteins and cells in normal-pressure hydrocephalus. J Neurol. 1982;228:171–80.PubMedCrossRef Wikkelsø C, Blomstrand C. Cerebrospinal fluid proteins and cells in normal-pressure hydrocephalus. J Neurol. 1982;228:171–80.PubMedCrossRef
97.
go back to reference Brettschneider J, Claus A, Kassubek J, Tumani H. Isolated blood-cerebrospinal fluid barrier dysfunction: prevalence and associated diseases. J Neurol. 2005;252:1067–73.PubMedCrossRef Brettschneider J, Claus A, Kassubek J, Tumani H. Isolated blood-cerebrospinal fluid barrier dysfunction: prevalence and associated diseases. J Neurol. 2005;252:1067–73.PubMedCrossRef
98.
go back to reference Daum RS, Scheifele DW, Syriopoulou VP, Averill D, Smith AL. Ventricular involvement in experimental Hemophilus influenzae meningitis. J Pediatr. 1978;93:927–30.PubMedCrossRef Daum RS, Scheifele DW, Syriopoulou VP, Averill D, Smith AL. Ventricular involvement in experimental Hemophilus influenzae meningitis. J Pediatr. 1978;93:927–30.PubMedCrossRef
100.
go back to reference Sommer JB, Gaul C, Heckmann J, Neundörfer B, Erbguth FJ. Does lumbar cerebrospinal fluid reflect ventricular cerebrospinal fluid? A prospective study in patients with external ventricular drainage. Eur Neurol. 2002;47:224–32.PubMedCrossRef Sommer JB, Gaul C, Heckmann J, Neundörfer B, Erbguth FJ. Does lumbar cerebrospinal fluid reflect ventricular cerebrospinal fluid? A prospective study in patients with external ventricular drainage. Eur Neurol. 2002;47:224–32.PubMedCrossRef
101.
go back to reference Podkovik S, Kashyap S, Wiginton J 4th, et al. Comparison of ventricular and lumbar cerebrospinal fluid composition. Cureus. 2020;12: e9315.PubMedPubMedCentral Podkovik S, Kashyap S, Wiginton J 4th, et al. Comparison of ventricular and lumbar cerebrospinal fluid composition. Cureus. 2020;12: e9315.PubMedPubMedCentral
102.
go back to reference Rubalcava MA, Sotelo J. Differences between ventricular and lumbar cerebrospinal fluid in hydrocephalus secondary to cysticercosis. Neurosurgery. 1995;37:668–71.PubMedCrossRef Rubalcava MA, Sotelo J. Differences between ventricular and lumbar cerebrospinal fluid in hydrocephalus secondary to cysticercosis. Neurosurgery. 1995;37:668–71.PubMedCrossRef
103.
go back to reference Ganrot K, Laurell CB. Measurement of IgG and albumin content of cerebrospinal fluid, and its interpretation. Clin Chem. 1974;20(5):571–3.PubMedCrossRef Ganrot K, Laurell CB. Measurement of IgG and albumin content of cerebrospinal fluid, and its interpretation. Clin Chem. 1974;20(5):571–3.PubMedCrossRef
104.
go back to reference Reiber H, Felgenhauer K. Protein transfer at the blood cerebrospinal fluid barrier and the quantitation of the humoral immune response within the central nervous system. Clin Chim Acta. 1987;163:319–28.PubMedCrossRef Reiber H, Felgenhauer K. Protein transfer at the blood cerebrospinal fluid barrier and the quantitation of the humoral immune response within the central nervous system. Clin Chim Acta. 1987;163:319–28.PubMedCrossRef
105.
go back to reference Wellmer A, Prange J, Gerber J, et al. D- and L-lactate in rabbit and human bacterial meningitis. Scand J Infect Dis. 2001;33:909–13.PubMedCrossRef Wellmer A, Prange J, Gerber J, et al. D- and L-lactate in rabbit and human bacterial meningitis. Scand J Infect Dis. 2001;33:909–13.PubMedCrossRef
106.
go back to reference Guerra-Romero L, Tauber MG, Fournier MA, Tureen JH. Lactate and glucose concentrations in brain interstitial fluid, cerebrospinal fluid, and serum during experimental pneumococcal meningitis. J Infect Dis. 1992;166:546–50.PubMedCrossRef Guerra-Romero L, Tauber MG, Fournier MA, Tureen JH. Lactate and glucose concentrations in brain interstitial fluid, cerebrospinal fluid, and serum during experimental pneumococcal meningitis. J Infect Dis. 1992;166:546–50.PubMedCrossRef
107.
go back to reference Coplan JD, Sharma T, Rosenblum LA, Friedman S, Bassoff TB, Barbour RL, Gorman JM. Effects of sodium lactate infusion on cisternal lactate and carbon dioxide levels in nonhuman primates. Am J Psychiatry. 1992;149:1369–73.PubMedCrossRef Coplan JD, Sharma T, Rosenblum LA, Friedman S, Bassoff TB, Barbour RL, Gorman JM. Effects of sodium lactate infusion on cisternal lactate and carbon dioxide levels in nonhuman primates. Am J Psychiatry. 1992;149:1369–73.PubMedCrossRef
108.
go back to reference Buch K, Bodilsen J, Knudsen A, et al. Cerebrospinal fluid lactate as a marker to differentiate between community-acquired acute bacterial meningitis and aseptic meningitis/encephalitis in adults: a Danish prospective observational cohort study. Infect Dis (Lond). 2018;50:514–21.CrossRef Buch K, Bodilsen J, Knudsen A, et al. Cerebrospinal fluid lactate as a marker to differentiate between community-acquired acute bacterial meningitis and aseptic meningitis/encephalitis in adults: a Danish prospective observational cohort study. Infect Dis (Lond). 2018;50:514–21.CrossRef
109.
go back to reference Li Y, Zhang G, Ma R, et al. The diagnostic value of cerebrospinal fluids procalcitonin and lactate for the differential diagnosis of post-neurosurgical bacterial meningitis and aseptic meningitis. Clin Biochem. 2015;48:50–4.PubMedCrossRef Li Y, Zhang G, Ma R, et al. The diagnostic value of cerebrospinal fluids procalcitonin and lactate for the differential diagnosis of post-neurosurgical bacterial meningitis and aseptic meningitis. Clin Biochem. 2015;48:50–4.PubMedCrossRef
110.
go back to reference Sakushima K, Hayashino Y, Kawaguchi T, Jackson JL, Fukuhara S. Diagnostic accuracy of cerebrospinal fluid lactate for differentiating bacterial meningitis from aseptic meningitis: a meta-analysis. J Infect. 2011;62:255–62.PubMedCrossRef Sakushima K, Hayashino Y, Kawaguchi T, Jackson JL, Fukuhara S. Diagnostic accuracy of cerebrospinal fluid lactate for differentiating bacterial meningitis from aseptic meningitis: a meta-analysis. J Infect. 2011;62:255–62.PubMedCrossRef
111.
go back to reference Renfrow JJ, Frey CD, Arnel M, Wolfe SQ, McLouth C, Datar S. Utility of cerebrospinal fluid lactate in aneurysmal subarachnoid hemorrhage. Surg Neurol Int. 2018;9:155.PubMedPubMedCentralCrossRef Renfrow JJ, Frey CD, Arnel M, Wolfe SQ, McLouth C, Datar S. Utility of cerebrospinal fluid lactate in aneurysmal subarachnoid hemorrhage. Surg Neurol Int. 2018;9:155.PubMedPubMedCentralCrossRef
112.
go back to reference Shimoda M, Yamada S, Yamamoto I, Tsugane R, Sato O. Time course of CSF lactate level in subarachnoid haemorrhage. Correlation with clinical grading and prognosis. Acta Neurochir (Wien). 1989;99:127–34.CrossRef Shimoda M, Yamada S, Yamamoto I, Tsugane R, Sato O. Time course of CSF lactate level in subarachnoid haemorrhage. Correlation with clinical grading and prognosis. Acta Neurochir (Wien). 1989;99:127–34.CrossRef
114.
go back to reference Abelian A, Mund T, Curran MD, et al. Towards accurate exclusion of neonatal bacterial meningitis: a feasibility study of a novel 16S rDNA PCR assay. BMC Infect Dis. 2020;20:441.PubMedPubMedCentralCrossRef Abelian A, Mund T, Curran MD, et al. Towards accurate exclusion of neonatal bacterial meningitis: a feasibility study of a novel 16S rDNA PCR assay. BMC Infect Dis. 2020;20:441.PubMedPubMedCentralCrossRef
Metadata
Title
Spatial and temporal variation of routine parameters: pitfalls in the cerebrospinal fluid analysis in central nervous system infections
Authors
Marija Djukic
Peter Lange
Frank Erbguth
Roland Nau
Publication date
01-12-2022
Publisher
BioMed Central
Keyword
Meningitis
Published in
Journal of Neuroinflammation / Issue 1/2022
Electronic ISSN: 1742-2094
DOI
https://doi.org/10.1186/s12974-022-02538-3

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