解:过O作OC⊥AB交AB于C点,连接OA,如右图所示:由题意可知:OA=5,AB=8∵OC⊥AB∴由垂径定理可得:AC=BC=4在Rt△0CA中,由勾股定理可得:OC2=OA2-AC2OC= 52?42 =3故圆心到弦的距离为3,故选C.
