Phương pháp giải:

\(\begin{gathered}
\left\{ \begin{gathered}
Ala - Glu - X:a \hfill \\
Gly - Ala - X - Lys - Glu:b \hfill \\ 
\end{gathered} \right. \to \left\{ \begin{gathered}
a + b = {n_{hh}} \hfill \\
4a + 6b = {n_{NaOH}} \hfill \\ 
\end{gathered} \right. \to \left\{ \begin{gathered}
a \hfill \\
b \hfill \\ 
\end{gathered} \right. \hfill \\
\xrightarrow{{NaOH}}Muoi\left\{ \begin{gathered}
Gly - Na:b \hfill \\
Ala - Na:a + b \hfill \\
Lys - Na:b \hfill \\
Glu - 2Na:a + b \hfill \\
X - Na:a + b \hfill \\ 
\end{gathered} \right. \hfill \\
{m_{muoi}} \to X \hfill \\ 
\end{gathered} \)

Lời giải chi tiết:

\(\begin{gathered}
\left\{ \begin{gathered}
Ala - Glu - X:a \hfill \\
Gly - Ala - X - L - Glu:b \hfill \\
\end{gathered} \right. \to \left\{ \begin{gathered}
a + b = {n_{hh}} = 0,2 \hfill \\
4a + 6b = {n_{NaOH}} = 0,9 \hfill \\
\end{gathered} \right. \to \left\{ \begin{gathered}
a = 0,15 \hfill \\
b = 0,05 \hfill \\
\end{gathered} \right. \hfill \\
\xrightarrow{{NaOH}}Muoi\left\{ \begin{gathered}
Gly - Na:0,05 \hfill \\
Ala - Na:0,2 \hfill \\
Lys - Na:0,05 \hfill \\
Glu - 2Na:0,2 \hfill \\
X - Na:0,2 \hfill \\
\end{gathered} \right. \hfill \\
\to {m_{muoi}} = 0,05.(75 + 22) + 0,2.(89 + 22) + 0,05.(146 + 22) + 0,2.(147 + 2.22) + 0,2.(X + 22) = 95,85 \hfill \\
\to X = 89 \hfill \\
\end{gathered} \)

Vậy X là Ala

Đáp án D