Finding $a_n$ when $a_1=5$, $a_n a_{n+1}=2a_n-1$ $(n \in \mathbb{N})$ (Question Edited)
It is clear that $a_1=5=\dfrac{4\times1+1}{4\times1-3}$.
Now, if $a_n=\dfrac{4n+1}{4n-3}$, then\begin{align}a_{n+1}&=\frac{2a_n-1}{a_n}\\&=2-\frac1{a_n}\\&=2-\frac{4n-3}{4n+1}\\&=\frac{4n+5}{4n+1}\\&=\frac{4(n+1)+1}{4(n+1)-3}.\end{align}
$$\begin{align} \because & a_na_{n+1}=2a_n-1\\ \therefore & a_n(a_{n+1}-1)=a_n-1\\ \therefore & \frac{a_n}{a_n-1}=\frac{1}{a_{n+1}-1}\\ \therefore & \frac 1{a_n-1}+1=\frac 1{a_{n+1}-1} \end{align}$$ Ok,let $b_n=\frac 1{a_n-1}$, it is so easy.Now
$$b_1=\frac 1{a_1-1}=\frac 14\quad b_n+1=b_{n+1}\quad\Longrightarrow\quad \frac 1{a_n-1}=b_n=n-\frac 34 \quad\Longrightarrow\quad a_n=1+\frac 1{n-\frac 34}=\frac {4n+1}{4n-3}$$