You're just about there.
A) Correct. Checking whether the potential subspace contains the zero vector is a great place to start on these sorts of problems. No zero vector -- not a subspace.
B) This is a subspace. The set of solutions of a homogeneous linear system is always a subspace (it is known as a "null space" or "kernel" of some corresponding linear transformation). In fact, if you let $M = \begin{bmatrix} 2 & 9 & 0 \\ 8 & 0 & -5 \end{bmatrix}$, then the set in B) is just $\mathrm{Null}(M)$ (the nullspace of $M$). Again, Nullspaces are always subspaces.
Alternatively, you could solve the corresponding system $M{\bf x}={\bf 0}$ and find that elements of that set look like ${\bf x} = \begin{bmatrix} 5/8 \\ -5/36 \\ 1 \end{bmatrix}z$ for any choice of $z \in \mathbb{R}$. So this set is the span of $\begin{bmatrix} 5/8 \\ -5/36 \\ 1 \end{bmatrix}$ (and thus a subspace since all spans are subspaces).
C) Correct. You can see this is a subspace because the elements are just multiples of $(-5,3,4)$ and again spans are subspaces.
D) Correct. This is a subspace for the same reasons as part B) (it's the set of solutions of a homogeneous linear system).
E) Correct. Not a subspace. Easier counterexample: $(1,1,1)$ is in there. But $(-1)(1,1,1)=(-1,-1,-1)$ is not (so not closed under scalar multiplication).
F) Not a subspace. $(0,0,0)$ is not in there.