Given A.P. has first term(a) = 25,

Common difference(d) = 22 – 25 = -3 and sum(S_n) = 116.

We know sum of n terms of an A.P. is given by, S_n = n[2a + (n – 1)d] / 2.

=> 116 = n[2(25) + (n − 1)(−3)]/2

=> n[53 − 3n]/2 = 116

=> 53n – 3n² = 232

=> 3n² – 53n + 232 = 0

=> 3n² – 24n – 29n + 232 = 0

=> 3n(n – 8) – 29 (n – 8) = 0

=> (3n – 29)( n – 8 ) = 0

=> n = 29/3 or n = 8

Ignoring n = 29/3 as number of terms cannot be a fraction, so we get, n = 8.

So, the last term is:

a₈ = a + (8 – 1)d = 25 + 7(-3) = 25 – 21 = 4

Hence, the last term of the given A.P. is 4.