Effect of hormone treatments on P. thunbergii cuttings for the production of surface roots on trees cultivated for bonsai – Bonsai Tonight

Abstract

Pinus thunbergii is a popular species of conifer cultivated as bonsai. In an effort to produce superior surface roots on P. thunbergii, bonsai enthusiasts have developed a method of making cuttings from young seedlings to replace any taproots with radially distributed lateral roots. These lateral roots are developed to improve the look of the tree when it matures and to help develop taper or flair near the base of the trunk. The focus of the present study is to measure the effect of different treatments on the production of roots developed through the “seedling-cutting” technique.

Cuttings were made from 63 seedlings of P. thunbergii planted 84 days previously. Treatments tested include 1-Naphthaleneacetic acid (Dip ‘n Grow), 1-Naphthaleneacetamide (Rootone) and a low dose fertilizer (Olivia’s Cloning Gel).

Root treatments outperformed controls by a small margin when product instructions were followed. Increased exposure to hormones stimulated increased root production.

Introduction

Bonsai enthusiasts appreciate Japanese black pines, Pinus thunbergii, for the age and character conveyed through their bark as much as for their general shape and appearance. A pine’s surface roots play an important role by demonstrating the tree’s connection to the ground in which it grows.

As black pine bonsai became more popular, producers developed approaches to creating trees with superior surface roots. By making a cutting of a young seedling, a grower can essentially replace the taproot with several lateral roots that are distributed radially. This approach has become known as the “seedling-cutting” technique.

The idea behind the present study is to guide the production of pines created by the seedling-cutting technique. While seedling-cuttings can be developed without the use of hormones, their application can produce significantly more roots than seedling-cuttings made without them.

This study is limited to the comparison of basic approaches to creating seedling-cuttings and does not allow for specific recommendations for producing superior roots. It is intended as preliminary research aimed at guiding future efforts to optimize root production for bonsai in P. thunbergii and Pinus densiflora.

Materials and Methods

Creating the Seedling-Cuttings

P. thunbergii seeds were sown in a bed containing equal parts of lava, pumice and clay pebbles (particle size was between 1mm – 5mm) and covered with a thin layer of sand (particle size 1mm – 2mm) on February 9, 2013. After 84 days the seedlings were uprooted and the taproots were removed with a razor blade leaving approximately 2.5cm of stem. The cut is made with a slicing action to avoid crushing stem tissue. Cuttings were placed in water after the taproots were removed to prevent them from drying out.

Pine seedlings - May 4, 2013


Figure 1. P. thunbergii seedlings 84 days after planting in seedbed of lava, pumice and clay pebbles covered with thin layer of sand. The red-colored stems indicate optimal time for making seedling-cuttings.

Making a seedling-cutting

Figure 2. Seedling-cutting.

Cutting Treatments

Dip ‘n Grow Treatment: Cuttings were placed in a vial with Dip ‘n Grow (1-Naphthaleneacetic acid 0.05% at 10x dilution) for 5 seconds per the manufacturer’s instructions. A second batch remained in the vial for 5 minutes to measure the effect of increased exposure.

Dip 'n Grow

Figure 3. Seedling-cutting to be dipped in Dip ‘n Grow.

Rootone Treatment: Cuttings were dipped in Rootone (1-Naphthaleneacetamide 0.2%) and excess powder was flicked off.

Rootone


Figure 4. Rootone.

After dipping


Figure 5. After dipping seedling-cutting in Rootone.

After flicking off excess hormone

Figure 6. After flicking off excess hormone.

Olivia’s Cloning Gel Treatment: Cuttings were dipped in gel (N-P-K: 0.08-0.15-0.09) before planting.

Olivia's Cloning Gel

Figure 7. Seedling-cuttings in cloning gel.

Control: Cuttings were planted with no hormone or other treatments.

Cutting at the First Root: A variation of the control, these seedlings were cut below the first root. Taproots were removed leaving a single lateral root.

Cutting to 1 root

Figure 8. Removing taproot below first lateral root.

Planting the Seedling-Cuttings

Cuttings were planted in a bed of lava, pumice and clay pebbles similar to the bed used for germination. Instead of sand, channels of small clay pebbles (particle size 1mm – 2mm) were used to provide additional moisture for the cuttings.

Planting medium

Figure 9. Planting medium used to grow seedling-cuttings.

The bed was watered before planting and perforations were made with a 2.5mm wire. Treated cuttings were placed in these perforations and sand was added to hold the cuttings in place. Sections of 1.5mm aluminum wire were used to pin down cutting foliage to prevent the cuttings from moving during watering. Seedling-cuttings were kept outdoors under 30% shade cloth and watered when the planting medium began to dry out.

Pinning down cuttings with wire


Figure 10. Aluminum wire secures the cuttings.

As planted

Figure 11. After planting, the 63 seedling-cuttings were gently watered.

Results and Discussion

The seedling-cuttings were watered regularly throughout summer, fall and winter. In winter, some seedlings showed signs of yellowing, a sign of stress due to temperature, growing conditions, fungus and/or infestation. Seedling-cuttings were uprooted 295 days after planting when the apical buds began to extend.

February 23, 2014

Figure 12. Seedling-cuttings 295 days after planting, February 23, 2014.

Mortality was low overall (6.3%) but significantly higher among the control and cut to one root seedling-cuttings (25%) than among the treatment group (3.6%). As mortality could be attributed to bird activity as well as cutting treatment, mortality was not considered as a factor contributing to study results.

The seedling-cuttings were evaluated by counting primary root divisions. Results for the control group and the group cut back to a single lateral root showed no difference, each producing 2-3 lateral roots per seedling-cutting. The cloning gel performed slightly better than the control, whereas the hormone treatments produced better results. The treatment that produced the greatest number of roots was the group that soaked in the Dip ‘n Grow solution for 5 minutes, 60 times the recommended exposure.

Roots produced by 5 minutes in Dip 'n Grow


Figure 13. Seedling-cutting treated with Dip ‘n Grow – 5 minute treatment.

The reason for taking two approaches to the Dip ‘n Grow treatment is that it offered the best flexibility in terms of managing exposure to the cutting treatment. Holding a stem in powder longer does not allow for greater hormone absorption. Exposure to gel nutrients remains the same regardless of time spent in the gel as it sticks to the stem after it is removed. Stem tissue has some ability to absorb liquid hormone as demonstrated by the increased  root production resulting from increased exposure to the liquid Dip ‘n Grow.

Chart showing minimum, maximum and average values per treatment

Figure 14. Average number of roots per seedling-cutting. Range indicates minimum and maximum values.

This study suggests that varying the time spent in a liquid hormone solution may provide some flexibility for controlling root production. Producers wanting more surface roots could increase exposure to hormones while producers wanting fewer could limit exposure. Further study is required to determine expectations for root production based on varying levels of hormone exposure.

Directions for Further Study

In addition to suggesting a correlation between hormone exposure and root production, this study shows that a variety of approaches can produce seedling-cuttings acceptable for use as bonsai. Further inquiries could add to these findings by:

  • Measuring the effect of increased exposure to hormones to offer guidance relating root production to exposure time. This would allow growers to control root production to fit their needs.
  • Measuring the effect on stem length for the cutting. Does leaving longer or shorter stems make an appreciable difference?
  • Varying the time at which seedling-cuttings are made.
  • Modifying the planting environment to ensure all seedling-cuttings receive equal warmth and moisture. Planting all seedling-cuttings in one containers makes the amount of light received equal but cuttings planted near the sides of the container receive more warmth and dry out more quickly whereas cuttings towards the center of the pot have more moisture available to them.
  • Measuring overall root mass and/or plant mass to determine which approach leads to the most vigorous trees.
  • Varying the timing and types of fertilizer applied during the growing season.
  • Varying the growing medium and/or exposure to sunlight to determine optimal conditions for increasing vigor.
  • Determining the optimal number of surface roots for trees of different styles and sizes. This is a broader and more subjective area of inquiry that is tied more closely to the fundamental purpose of creating bonsai as objects for aesthetic appreciation.

Supporting Information

Roots Per Cutting

Treatment Low High Avg
Dip N Grow 5 minutes (n=7) 4 12 63
Dip N Grow 5 seconds (n=16) 2 8 39
Rootone (n=15) 1 7 35
Olivia’s Cloning Gel (n=15) 2 5 3
Control (n=3) 2 3 27
Cut to one root (n=3) 2 3 27

Table S1. Low, high and average number of roots per seedling-cutting.

Roots produced by 5 minutes in Dip 'n Grow


Figure S1. Dip ‘n Grow – 5 minute treatment

1a - Dip 'n Grow


Figure S2. Seedling-cutting treated with Dip ‘n Grow for 5 seconds

Control

Figure S3. Control specimen.

Roots Per Cutting

Treatment Seedling #1 #2 #3 #4 #5 #6 #7 #8 #9 #10 #11 #12 #13 #14 #15 #16
Dip ‘n Grow – 5 seconds (n=16) 2 5 5 2 5 3 4 3 8 3 2 3 6 5 4 3
Olivia’s Cloning Gel (n=15) 2 3 2 5 3 1 3 3 3 2 4 3 4 2 5 0
Rootone (n=15) 4 7 3 4 3 6 3 3 2 3 2 5 1 4 3 0
Control (n=3) 3 3 2 0 0 0 0 0 0 0 0 0 0 0 0 0
Cut to one root (n=3) 3 3 2 0 0 0 0 0 0 0 0 0 0 0 0 0
Dip ‘n Grow – 5 minutes (n=7) 7 4 6 5 12 5 5 0 0 0 0 0 0 0 0 0

Table S2. Number of primary root divisions for seedling-cuttings observed 295 days after cuttings were made. “x” indicates seedling-cuttings that died or disappeared.

6 - Dip 'n Grow (5 min)


Figure S4. Dip ‘n Grow – 5 minute treatment

1a - Dip 'n Grow


Figure S5. Dip ‘n Grow – 5 second treatment (seedling-cuttings 1-8)

1b - Dip 'n Grow


Figure S6. Dip ‘n Grow – 5 second treatment (seedling-cuttings 9-16)

3a - Rootone


Figure S7. Rootone (seedling-cuttings 1-7)

3b - Rootone


Figure S8. Rootone (seedling-cuttings 8-15)

2a - Olivia's Cloning Gel


Figure S9. Olivia’s Cloning Gel (seedling-cuttings 1-7)

2b - Olivia's Cloning Gel


Figure S10. Olivia’s Cloning Gel (seedling-cuttings 8-15)

5 - cut to 1 root


Figure S11. Cut to one root

4 - control


Figure S12. Control group.

Acknowledgements: The author wishes to thank Boon Manakitivipart and Kathy Shaner for introducing him to the seedling-cutting technique as well as Kindai Bonsai and Bonsai Today for publishing articles on the topic.

Author Contributions: Conceived and designed the experiments: JD. Performed the experiments: JD. Analyzed the data: JD. Wrote the manuscript: JD.

Keywords: Conifers, Hormones, Horticulture, Lateral roots, Plant roots, Seedlings

Citation: Dupuich J (2015) Effect of hormone treatments on P. thunbergii cuttings for the production of surface roots on trees cultivated for bonsai. Indian Bonsai Art. https://bonsaitonight.com/2015/07/17/effect-of-hormone-treatments-on-p-thunbergii-cuttings-for-the-production-of-surface-rootage-on-trees-cultivated-for-bonsai/

Funding: This research was funded by the author.

Competing Interests: The author has declared that no competing interests exist.

Copyright: © 2015 Dupuich. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.

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