360 divides a^2 (a^2 - 1) (a^2 - 4)

Theorem
Let $a \in \Z$ be an integer.

Then:
 * $360 \divides a^2 \paren {a^2 - 1} \paren {a^2 - 4}$

where $\divides$ denotes divisibility.

Proof
By Difference of Two Squares:


 * $a^2 \paren {a^2 - 1} \paren {a^2 - 4} = a \paren {a - 2} \paren {a - 1} a \paren {a + 1} \paren {a + 2}$

We have that $a - 2, a - 1, a, a + 1, a + 2$ are $5$ consecutive integers.

Hence from Product of 5 Consecutive Integers is Divisible by 120:
 * $120 \divides a \paren {a^2 - 1} \paren {a^2 - 4}$

and so:
 * $120 \divides a^2 \paren {a^2 - 1} \paren {a^2 - 4}$

As $120 = 2^3 \cdot 3 \cdot 5$, it suffices to show that
 * $9 \divides a^2 \paren {a^2 - 1} \paren {a^2 - 4}$

Consider the following 3 cases.

If $a \in 3 \Z$, then $9 \divides a^2$.

If $a \in 3 \Z + 1$, then $a-1, a+2 \in 3 \Z$, so that $9 \divides \paren {a-1} \paren {a+2}$.

If $a \in 3 \Z + 2$, then $a-2, a+1 \in 3 \Z$, so that $9 \divides \paren {a-2} \paren {a+1}$.