In aqueous solution, α-anomer and β-anomer of glucose remain in equilibrium with each other along with a small amount of glucose in open chain form ($0.02~\%$). The open chain form in the solution contains a free aldehydic group and hence gives several reactions involving free aldehyde.
Though little, the open chain form of glucose reacts with many reagents which are used to treat free aldehydic groups. Therefore, glucose in aqueous solution also reacts with those reagents.
$$\ce{glucose_{(aq)} + HCN -> gluco cyanohydrin} $$
$$\ce{glucose_{(aq)} + H2NOH -> gluco oxime} $$
$$\ce{glucose_{(aq)} + H2NNHPh -> gluco phenylhydrozone} $$
$$\ce{glucose_{(aq)} + 3H2NNHPh-> gluco osazone} $$
$$\ce{glucose_{(aq)} + Br2_{(aq)}-> gluconic acid} $$
Glucose also answers Tollen's reagent test, Fehling's solution test and Benedict's solution test.
However, as interesting it may seem, glucose is a two-face molecule. Here are some reactions which glucose does not like:
$$\ce{glucose_{(aq)} + NaHSO3 -> no reaction} $$
$$\ce{glucose_{(aq)} + {2,4-DNP} -> no reaction} $$
$$\ce{glucose_{(aq)} + {Schiff's reagent} -> no reaction} $$
Why is that glucose does not react with $\ce{NaHSO3}$ or $\ce{{2,4-DNP}}$ or Schiff's reagent while it answers many other reactions where the free aldehydic group is involved?
I am looking for a convincing answer. Most answers in web tell that some are strong and some aren't strong enough. If you give enough time, all the carbonyl reactions should work with glucose because there will always be $0.02~\%$ in open chain form. If some of it gets used up, then the equilibrium will shift and hence more open chain form of glucose will be formed.
