Position vectors of A and B are  $\overrightarrow{\alpha }=3\widehat{i}+\widehat{j}+2\widehat{k}$and $\overrightarrow{\beta }=\widehat{i}-2\widehat{j}-4\widehat{k}$ ,  the distance of the point $\left(-1,1,1\right)$  form the plane passing through B and perpendicular to AB is

$\overrightarrow{AB}=\overrightarrow{\beta }-\overrightarrow{\alpha }=-2\widehat{i}-3\widehat{j}-6\widehat{k}$

Equation of the plane passing through B and perpendicular to AB is 

$\begin{array}{l}(\overrightarrow{\mathrm{r}}-\overrightarrow{\mathrm{OB}})\cdot \overrightarrow{\mathrm{AB}}=0\\ \overrightarrow{\mathrm{r}}\cdot (2\widehat{\mathrm{i}}+3\widehat{\mathrm{j}}+6\widehat{\mathrm{k}})+28=0\end{array}$

Hence, the required distance from 

$\begin{array}{l}\overrightarrow{\mathrm{r}}=-\widehat{\mathrm{i}}+\widehat{\mathrm{j}}+\widehat{\mathrm{k}}\\ =\left|\frac{(-\widehat{\mathrm{i}}+\widehat{\mathrm{j}}+\widehat{\mathrm{k}})\cdot (2\widehat{\mathrm{i}}+3\widehat{\mathrm{j}}+6\widehat{\mathrm{k}})+28}{|2\widehat{\mathrm{i}}+3\widehat{\mathrm{j}}+6\widehat{\mathrm{k}}|}\right|\\ =\left|\frac{-2+3+6+28}{7}\right|\\ =5\text{ units }\end{array}$