TY - JOUR
T1 - Anti-amyloid beta protein antibody passage across the blood-brain barrier in the SAMP8 mouse model of Alzheimer's disease
T2 - An age-related selective uptake with reversal of learning impairment
AU - Banks, William A.
AU - Farr, Susan A.
AU - Morley, John E.
AU - Wolf, Kathy M.
AU - Geylis, Valeria
AU - Steinitz, Michael
PY - 2007/8
Y1 - 2007/8
N2 - Amyloid beta protein (Aβ) levels are elevated in the brain of Alzheimer's disease patients. Anti-Aβ antibodies can reverse the histologic and cognitive impairments in mice which overexpress Aβ. Passive immunization appears safer than vaccination and treatment of patients will likely require human rather than xenogenic antibodies. Effective treatment will likely require antibody to cross the blood-brain barrier (BBB). Unfortunately, antibodies typically cross the BBB very poorly and accumulate less well in brain than even albumin, a substance nearly totally excluded from the brain. We compared the ability of two anti-Aβ human monoclonal IgM antibodies, L11.3 and HyL5, to cross the BBB of young CD-1 mice to that of young and aged SAMP8 mice. The SAMP8 mouse has a spontaneous mutation that induces an age-related, Aβ-dependent cognitive deficit. There was preferential uptake of intravenously administered L11.3 in comparison to HyL5, albumin, and a control human monoclonal IgM (RF), especially by hippocampus and olfactory bulb in aged SAMP8 mice. Injection of L11.3 into the brains of aged SAMP8 mice reversed both learning and memory impairments in aged SAMP8 mice, whereas IgG and IgM controls were ineffective. Pharmacokinetic analysis predicted that an intravenous dose 1000 times higher than the brain injection dose would reverse cognitive impairments. This predicted intravenous dose reversed the impairment in learning, but not memory, in aged SAMP8 mice. In conclusion, an IgM antibody was produced that crosses the BBB to reverse cognitive impairment in a murine model of Alzheimer's disease.
AB - Amyloid beta protein (Aβ) levels are elevated in the brain of Alzheimer's disease patients. Anti-Aβ antibodies can reverse the histologic and cognitive impairments in mice which overexpress Aβ. Passive immunization appears safer than vaccination and treatment of patients will likely require human rather than xenogenic antibodies. Effective treatment will likely require antibody to cross the blood-brain barrier (BBB). Unfortunately, antibodies typically cross the BBB very poorly and accumulate less well in brain than even albumin, a substance nearly totally excluded from the brain. We compared the ability of two anti-Aβ human monoclonal IgM antibodies, L11.3 and HyL5, to cross the BBB of young CD-1 mice to that of young and aged SAMP8 mice. The SAMP8 mouse has a spontaneous mutation that induces an age-related, Aβ-dependent cognitive deficit. There was preferential uptake of intravenously administered L11.3 in comparison to HyL5, albumin, and a control human monoclonal IgM (RF), especially by hippocampus and olfactory bulb in aged SAMP8 mice. Injection of L11.3 into the brains of aged SAMP8 mice reversed both learning and memory impairments in aged SAMP8 mice, whereas IgG and IgM controls were ineffective. Pharmacokinetic analysis predicted that an intravenous dose 1000 times higher than the brain injection dose would reverse cognitive impairments. This predicted intravenous dose reversed the impairment in learning, but not memory, in aged SAMP8 mice. In conclusion, an IgM antibody was produced that crosses the BBB to reverse cognitive impairment in a murine model of Alzheimer's disease.
KW - Alzheimer's disease
KW - Amyloid beta protein
KW - Blood-brain barrier
KW - Cognition
KW - IgM
KW - Monoclonal antibody
KW - Passive immunization
KW - Therapeutics
UR - http://www.scopus.com/inward/record.url?scp=34447622675&partnerID=8YFLogxK
U2 - 10.1016/j.expneurol.2007.05.005
DO - 10.1016/j.expneurol.2007.05.005
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C2 - 17582399
AN - SCOPUS:34447622675
SN - 0014-4886
VL - 206
SP - 248
EP - 256
JO - Experimental Neurology
JF - Experimental Neurology
IS - 2
ER -