INTRODUCTION
The enhancement in corn digestion due to steam-flaking has been clearly demonstrated. Compared with dry rolled corn (DRC), steam flaked corn (SFC) increases ruminal and total tract starch digestion by an average of 25% and 10%, respectively [
1,
2], and the net energy (NE) value of corn for maintenance and gain by 13% and 16%, respectively [
3]. The increase in NE is consistent with a 10% increase in total digestible nutrients, reflecting the fact that steam flaking increases the digestion of non-starch organic matter to the same extent that it increases starch digestion [
2,
4]. In a 12-trial summary, Zinn et al [
3] observed that substitution of SFC for DRC in growing-finishing diets for feedlot cattle also increased (6.3%) average daily gain (ADG). The basis for this effect is uncertain. In as much as the substitution of SFC for DRC increases the energy density of the diet, it follows that to the extent that time allowed at the feed bunk is restricted, the substitution could result in greater energy intake and hence, growth-performance. Although feedlot cattle frequent the feed bunk on multiple occasions throughout the day, the actual time speJnt consuming feed is less than 2 hours [
5–
7].
The objective of this experiment was to evaluate how feed access (either ad libitum or restricted) affects the feeding value of steam-flaked and dry rolled corn as assessed based on growth-performance measures in feedlot steers.
RESULTS AND DISCUSSION
Treatment effects on growth performance and estimated dietary NE of steers are shown in
Table 2. There were no treatment interactions on dry matter intake (DMI), ADG, feed efficiency (G:F), or dietary NE. There was a feeding management by corn processing interaction (p = 0.05) on the within-pen standard deviation (SD) in steers ADG. Under condition of
ad libitum feed access, the SD for within-pen ADG was greater in steers fed DRC- vs SFC-based diets. In contrast, under conditions of restricted feed access the SD for within-pen ADG was greater for SFC- vs DRC-based diets. The basis for these differences in within-pen ADG is not certain. Daily weight gain is closely associated with energy intake [
13]. Accordingly, variation in ADG can be interpreted as a reflection of variation in DMI. Limit feeding programs where the daily amount of feed provided was restricted by 5% to 10% has in some instances [
14,
15] decreased within-pen variation in ADG. Whereas, in other cases [
16,
17] limiting the amount of feed provided did not affect within-pen variation in ADG. As dietary treatments allow for growth rates that more closely approximate genetic potential, it is expected that variation in ADG will diminish. This effect is apparent for steers with
ad libitum access to feed. Conversely, when feeding management restricts the animal’s ability to achieve its genetic potential greater variation in individual ADG is expected due to differences in individual feeding activity (aggression at the feed bunk). Management restrictions resulting in marked reductions in both ADG and within pen SD for ADG (as was the case with restricted access time to the DRC-based diet), may reflect generalized subclinical acidosis [
5].
In the present study, the amount of feed provided was not restricted. Instead, we evaluated how the amount of time allotted to consume feed affects growth-performance responses to DRC- vs SFC-based diets. The amount of time feedlot cattle spend actually consuming feed has been a recurring research topic, with estimates of average consumption rates ranging from 0.075 to 0.400 kg/min [
5,
6,
18–
20]. Differences in feeding rates seem to be largely a function of how the assessment is done (for example, time spent at, or in close proximity to the feed bunk vs time spent with the head in the feed bunk). Based on radio telemetry (measuring time spent when the cattle head comes with 50 cm of the outside edge of the feed bunk), cattle spent a total of 32±5 min/d consuming 12.2 kg of a barley-based finishing diet [
5]. Rate of feed consumption averaged 0.38 kg/min, with an average feeding frequency of 7.1±0.6 visits/d to the feed bunk. Applying a similar approach, Schwartzkopf-Genswein et al [
6] observed that over a 153-day finishing period, steers spent a total of 106±5 min/d consuming 8.2 kg of a steam-rolled barley-based diet. The rate of feed consumption averaged 0.077 kg/min, with an average feeding frequency of 9±0.2 visits/d to the feed bunk. In contrast, Golden et al [
7], using the same technique, observed that steers spent an average of 51 min/d consuming 7.1 kg of a whole corn-based finishing cattle diet. The rate of feed consumption averaged 0.14±0.03 kg/min, with an average feeding frequency of 16±3 visits/d to the feed bunk. From the above, it is apparent that for feedlot cattle fed high-grain finishing diets, frequency of visits to the feed bunk can be quite variable. Nevertheless, in these studies the total time spent consuming feed will be less than two hours, with rate of feed consumption being partly dependent on differences in total feed consumed. In the present experiment, bunk space was sufficient (41 cm/head) to allow all steers access to the feed bunk at the same time. Notwithstanding, restricting access to feed to two periods of one hour each resulted in a marked reduction (p<0.01) in DMI, and hence, ADG.
Consistent with previous work [
3], the substitution of SFC for DRC increased (p<0.01) ADG, G:F, and estimated dietary NE, without affecting (p = 0.50) DMI. Given that the NE
m value for DRC is 2.18 Mcal/kg [
21], the estimated NE
m value for SFC using the replacement technique, averaged 2.44 Mcal/kg; an improvement of 10.7%. This result is in agreement with the 11.3% average increase in the NE
m value of SFC vs DRC reported in a 12-trial summary [
3].
Compared with ad libitum feed access, restricting feed access to 2 h/d markedly decreased (18%, p<0.01) DMI, and hence, ADG (27%, p<0.01), and G:F (12%, p = 0.02). However, the ratio of observed-to-expected dietary NE was not affected (p = 0.50). Hence, daily gain and feed efficiency were predictable functions of differences in dietary NE and observed DMI. As indicated previously, provided all steers simultaneously feed at the bunk (as was the case in this study), the restriction of feed access time, per se, to 2 h/d should not have limited steer’s ability to consume sufficient feed to achieve its growth potential. Hence, changes in growth-performance between ad libitum vs restricted feed access time may reflect the importance of meal size and frequency of feeding (not measured in this study).
Why the substitution of SFC for DRC results in greater energy intake is not certain. Using diet formulations comparable to those fed in the present study, Plascencia et al [
20] observed that rate of consumption of DRC-based diets was actually slightly greater (14%, p = 0.02) than that of SFC-based diets, averaging 0.107 and 0.097 kg/min. It follows then that independently of corn processing, 6 kg of DM (average of DM intake observed with
ad libitum feeding;
Table 2) could have been consumed in a total of 60 min (6 kg×0.10 kg/min). Hence, the lack of increased intake of the DRC-based diet sufficient to compensate for its lower energy density was not a simple function of feed access time. Furthermore, there was no interaction (p = 0.89) between grain processing and feed access time on comparative intake of the DRC- and SFC-based diets.